10b57cec5SDimitry Andric //===-- SimplifyIndVar.cpp - Induction variable simplification ------------===//
20b57cec5SDimitry Andric //
30b57cec5SDimitry Andric // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
40b57cec5SDimitry Andric // See https://llvm.org/LICENSE.txt for license information.
50b57cec5SDimitry Andric // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
60b57cec5SDimitry Andric //
70b57cec5SDimitry Andric //===----------------------------------------------------------------------===//
80b57cec5SDimitry Andric //
90b57cec5SDimitry Andric // This file implements induction variable simplification. It does
100b57cec5SDimitry Andric // not define any actual pass or policy, but provides a single function to
110b57cec5SDimitry Andric // simplify a loop's induction variables based on ScalarEvolution.
120b57cec5SDimitry Andric //
130b57cec5SDimitry Andric //===----------------------------------------------------------------------===//
140b57cec5SDimitry Andric
150b57cec5SDimitry Andric #include "llvm/Transforms/Utils/SimplifyIndVar.h"
160b57cec5SDimitry Andric #include "llvm/ADT/SmallVector.h"
170b57cec5SDimitry Andric #include "llvm/ADT/Statistic.h"
180b57cec5SDimitry Andric #include "llvm/Analysis/LoopInfo.h"
1956727255SDimitry Andric #include "llvm/Analysis/ValueTracking.h"
200b57cec5SDimitry Andric #include "llvm/IR/Dominators.h"
210b57cec5SDimitry Andric #include "llvm/IR/IRBuilder.h"
220b57cec5SDimitry Andric #include "llvm/IR/Instructions.h"
230b57cec5SDimitry Andric #include "llvm/IR/IntrinsicInst.h"
240b57cec5SDimitry Andric #include "llvm/IR/PatternMatch.h"
250b57cec5SDimitry Andric #include "llvm/Support/Debug.h"
260b57cec5SDimitry Andric #include "llvm/Support/raw_ostream.h"
270b57cec5SDimitry Andric #include "llvm/Transforms/Utils/Local.h"
280fca6ea1SDimitry Andric #include "llvm/Transforms/Utils/LoopUtils.h"
295ffd83dbSDimitry Andric #include "llvm/Transforms/Utils/ScalarEvolutionExpander.h"
300b57cec5SDimitry Andric
310b57cec5SDimitry Andric using namespace llvm;
32cb14a3feSDimitry Andric using namespace llvm::PatternMatch;
330b57cec5SDimitry Andric
340b57cec5SDimitry Andric #define DEBUG_TYPE "indvars"
350b57cec5SDimitry Andric
360b57cec5SDimitry Andric STATISTIC(NumElimIdentity, "Number of IV identities eliminated");
370b57cec5SDimitry Andric STATISTIC(NumElimOperand, "Number of IV operands folded into a use");
380b57cec5SDimitry Andric STATISTIC(NumFoldedUser, "Number of IV users folded into a constant");
390b57cec5SDimitry Andric STATISTIC(NumElimRem , "Number of IV remainder operations eliminated");
400b57cec5SDimitry Andric STATISTIC(
410b57cec5SDimitry Andric NumSimplifiedSDiv,
420b57cec5SDimitry Andric "Number of IV signed division operations converted to unsigned division");
430b57cec5SDimitry Andric STATISTIC(
440b57cec5SDimitry Andric NumSimplifiedSRem,
450b57cec5SDimitry Andric "Number of IV signed remainder operations converted to unsigned remainder");
460b57cec5SDimitry Andric STATISTIC(NumElimCmp , "Number of IV comparisons eliminated");
470b57cec5SDimitry Andric
480b57cec5SDimitry Andric namespace {
490b57cec5SDimitry Andric /// This is a utility for simplifying induction variables
500b57cec5SDimitry Andric /// based on ScalarEvolution. It is the primary instrument of the
510b57cec5SDimitry Andric /// IndvarSimplify pass, but it may also be directly invoked to cleanup after
520b57cec5SDimitry Andric /// other loop passes that preserve SCEV.
530b57cec5SDimitry Andric class SimplifyIndvar {
540b57cec5SDimitry Andric Loop *L;
550b57cec5SDimitry Andric LoopInfo *LI;
560b57cec5SDimitry Andric ScalarEvolution *SE;
570b57cec5SDimitry Andric DominatorTree *DT;
585ffd83dbSDimitry Andric const TargetTransformInfo *TTI;
590b57cec5SDimitry Andric SCEVExpander &Rewriter;
600b57cec5SDimitry Andric SmallVectorImpl<WeakTrackingVH> &DeadInsts;
610b57cec5SDimitry Andric
6281ad6265SDimitry Andric bool Changed = false;
630fca6ea1SDimitry Andric bool RunUnswitching = false;
640b57cec5SDimitry Andric
650b57cec5SDimitry Andric public:
SimplifyIndvar(Loop * Loop,ScalarEvolution * SE,DominatorTree * DT,LoopInfo * LI,const TargetTransformInfo * TTI,SCEVExpander & Rewriter,SmallVectorImpl<WeakTrackingVH> & Dead)660b57cec5SDimitry Andric SimplifyIndvar(Loop *Loop, ScalarEvolution *SE, DominatorTree *DT,
675ffd83dbSDimitry Andric LoopInfo *LI, const TargetTransformInfo *TTI,
685ffd83dbSDimitry Andric SCEVExpander &Rewriter,
690b57cec5SDimitry Andric SmallVectorImpl<WeakTrackingVH> &Dead)
705ffd83dbSDimitry Andric : L(Loop), LI(LI), SE(SE), DT(DT), TTI(TTI), Rewriter(Rewriter),
7181ad6265SDimitry Andric DeadInsts(Dead) {
720b57cec5SDimitry Andric assert(LI && "IV simplification requires LoopInfo");
730b57cec5SDimitry Andric }
740b57cec5SDimitry Andric
hasChanged() const750b57cec5SDimitry Andric bool hasChanged() const { return Changed; }
runUnswitching() const760fca6ea1SDimitry Andric bool runUnswitching() const { return RunUnswitching; }
770b57cec5SDimitry Andric
780b57cec5SDimitry Andric /// Iteratively perform simplification on a worklist of users of the
790b57cec5SDimitry Andric /// specified induction variable. This is the top-level driver that applies
800b57cec5SDimitry Andric /// all simplifications to users of an IV.
810b57cec5SDimitry Andric void simplifyUsers(PHINode *CurrIV, IVVisitor *V = nullptr);
820b57cec5SDimitry Andric
830fca6ea1SDimitry Andric void pushIVUsers(Instruction *Def,
840fca6ea1SDimitry Andric SmallPtrSet<Instruction *, 16> &Simplified,
850fca6ea1SDimitry Andric SmallVectorImpl<std::pair<Instruction *, Instruction *>>
860fca6ea1SDimitry Andric &SimpleIVUsers);
870fca6ea1SDimitry Andric
880b57cec5SDimitry Andric Value *foldIVUser(Instruction *UseInst, Instruction *IVOperand);
890b57cec5SDimitry Andric
900b57cec5SDimitry Andric bool eliminateIdentitySCEV(Instruction *UseInst, Instruction *IVOperand);
910b57cec5SDimitry Andric bool replaceIVUserWithLoopInvariant(Instruction *UseInst);
92753f127fSDimitry Andric bool replaceFloatIVWithIntegerIV(Instruction *UseInst);
930b57cec5SDimitry Andric
940b57cec5SDimitry Andric bool eliminateOverflowIntrinsic(WithOverflowInst *WO);
950b57cec5SDimitry Andric bool eliminateSaturatingIntrinsic(SaturatingInst *SI);
960b57cec5SDimitry Andric bool eliminateTrunc(TruncInst *TI);
970b57cec5SDimitry Andric bool eliminateIVUser(Instruction *UseInst, Instruction *IVOperand);
98753f127fSDimitry Andric bool makeIVComparisonInvariant(ICmpInst *ICmp, Instruction *IVOperand);
99753f127fSDimitry Andric void eliminateIVComparison(ICmpInst *ICmp, Instruction *IVOperand);
100753f127fSDimitry Andric void simplifyIVRemainder(BinaryOperator *Rem, Instruction *IVOperand,
1010b57cec5SDimitry Andric bool IsSigned);
1020b57cec5SDimitry Andric void replaceRemWithNumerator(BinaryOperator *Rem);
1030b57cec5SDimitry Andric void replaceRemWithNumeratorOrZero(BinaryOperator *Rem);
1040b57cec5SDimitry Andric void replaceSRemWithURem(BinaryOperator *Rem);
1050b57cec5SDimitry Andric bool eliminateSDiv(BinaryOperator *SDiv);
10606c3fb27SDimitry Andric bool strengthenBinaryOp(BinaryOperator *BO, Instruction *IVOperand);
107753f127fSDimitry Andric bool strengthenOverflowingOperation(BinaryOperator *OBO,
108753f127fSDimitry Andric Instruction *IVOperand);
109753f127fSDimitry Andric bool strengthenRightShift(BinaryOperator *BO, Instruction *IVOperand);
1100b57cec5SDimitry Andric };
1110b57cec5SDimitry Andric }
1120b57cec5SDimitry Andric
113fe6060f1SDimitry Andric /// Find a point in code which dominates all given instructions. We can safely
114fe6060f1SDimitry Andric /// assume that, whatever fact we can prove at the found point, this fact is
115fe6060f1SDimitry Andric /// also true for each of the given instructions.
findCommonDominator(ArrayRef<Instruction * > Instructions,DominatorTree & DT)116fe6060f1SDimitry Andric static Instruction *findCommonDominator(ArrayRef<Instruction *> Instructions,
117fe6060f1SDimitry Andric DominatorTree &DT) {
118fe6060f1SDimitry Andric Instruction *CommonDom = nullptr;
119fe6060f1SDimitry Andric for (auto *Insn : Instructions)
120fe6060f1SDimitry Andric CommonDom =
121bdd1243dSDimitry Andric CommonDom ? DT.findNearestCommonDominator(CommonDom, Insn) : Insn;
122fe6060f1SDimitry Andric assert(CommonDom && "Common dominator not found?");
123fe6060f1SDimitry Andric return CommonDom;
124fe6060f1SDimitry Andric }
125fe6060f1SDimitry Andric
1260b57cec5SDimitry Andric /// Fold an IV operand into its use. This removes increments of an
1270b57cec5SDimitry Andric /// aligned IV when used by a instruction that ignores the low bits.
1280b57cec5SDimitry Andric ///
1290b57cec5SDimitry Andric /// IVOperand is guaranteed SCEVable, but UseInst may not be.
1300b57cec5SDimitry Andric ///
1310b57cec5SDimitry Andric /// Return the operand of IVOperand for this induction variable if IVOperand can
1320b57cec5SDimitry Andric /// be folded (in case more folding opportunities have been exposed).
1330b57cec5SDimitry Andric /// Otherwise return null.
foldIVUser(Instruction * UseInst,Instruction * IVOperand)1340b57cec5SDimitry Andric Value *SimplifyIndvar::foldIVUser(Instruction *UseInst, Instruction *IVOperand) {
1350b57cec5SDimitry Andric Value *IVSrc = nullptr;
1360b57cec5SDimitry Andric const unsigned OperIdx = 0;
1370b57cec5SDimitry Andric const SCEV *FoldedExpr = nullptr;
1380b57cec5SDimitry Andric bool MustDropExactFlag = false;
1390b57cec5SDimitry Andric switch (UseInst->getOpcode()) {
1400b57cec5SDimitry Andric default:
1410b57cec5SDimitry Andric return nullptr;
1420b57cec5SDimitry Andric case Instruction::UDiv:
1430b57cec5SDimitry Andric case Instruction::LShr:
1440b57cec5SDimitry Andric // We're only interested in the case where we know something about
1450b57cec5SDimitry Andric // the numerator and have a constant denominator.
1460b57cec5SDimitry Andric if (IVOperand != UseInst->getOperand(OperIdx) ||
1470b57cec5SDimitry Andric !isa<ConstantInt>(UseInst->getOperand(1)))
1480b57cec5SDimitry Andric return nullptr;
1490b57cec5SDimitry Andric
1500b57cec5SDimitry Andric // Attempt to fold a binary operator with constant operand.
1510b57cec5SDimitry Andric // e.g. ((I + 1) >> 2) => I >> 2
1520b57cec5SDimitry Andric if (!isa<BinaryOperator>(IVOperand)
1530b57cec5SDimitry Andric || !isa<ConstantInt>(IVOperand->getOperand(1)))
1540b57cec5SDimitry Andric return nullptr;
1550b57cec5SDimitry Andric
1560b57cec5SDimitry Andric IVSrc = IVOperand->getOperand(0);
1570b57cec5SDimitry Andric // IVSrc must be the (SCEVable) IV, since the other operand is const.
1580b57cec5SDimitry Andric assert(SE->isSCEVable(IVSrc->getType()) && "Expect SCEVable IV operand");
1590b57cec5SDimitry Andric
1600b57cec5SDimitry Andric ConstantInt *D = cast<ConstantInt>(UseInst->getOperand(1));
1610b57cec5SDimitry Andric if (UseInst->getOpcode() == Instruction::LShr) {
1620b57cec5SDimitry Andric // Get a constant for the divisor. See createSCEV.
1630b57cec5SDimitry Andric uint32_t BitWidth = cast<IntegerType>(UseInst->getType())->getBitWidth();
1640b57cec5SDimitry Andric if (D->getValue().uge(BitWidth))
1650b57cec5SDimitry Andric return nullptr;
1660b57cec5SDimitry Andric
1670b57cec5SDimitry Andric D = ConstantInt::get(UseInst->getContext(),
1680b57cec5SDimitry Andric APInt::getOneBitSet(BitWidth, D->getZExtValue()));
1690b57cec5SDimitry Andric }
17081ad6265SDimitry Andric const auto *LHS = SE->getSCEV(IVSrc);
17181ad6265SDimitry Andric const auto *RHS = SE->getSCEV(D);
17281ad6265SDimitry Andric FoldedExpr = SE->getUDivExpr(LHS, RHS);
1730b57cec5SDimitry Andric // We might have 'exact' flag set at this point which will no longer be
1740b57cec5SDimitry Andric // correct after we make the replacement.
17581ad6265SDimitry Andric if (UseInst->isExact() && LHS != SE->getMulExpr(FoldedExpr, RHS))
1760b57cec5SDimitry Andric MustDropExactFlag = true;
1770b57cec5SDimitry Andric }
1780b57cec5SDimitry Andric // We have something that might fold it's operand. Compare SCEVs.
1790b57cec5SDimitry Andric if (!SE->isSCEVable(UseInst->getType()))
1800b57cec5SDimitry Andric return nullptr;
1810b57cec5SDimitry Andric
1820b57cec5SDimitry Andric // Bypass the operand if SCEV can prove it has no effect.
1830b57cec5SDimitry Andric if (SE->getSCEV(UseInst) != FoldedExpr)
1840b57cec5SDimitry Andric return nullptr;
1850b57cec5SDimitry Andric
1860b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Eliminated IV operand: " << *IVOperand
1870b57cec5SDimitry Andric << " -> " << *UseInst << '\n');
1880b57cec5SDimitry Andric
1890b57cec5SDimitry Andric UseInst->setOperand(OperIdx, IVSrc);
1900b57cec5SDimitry Andric assert(SE->getSCEV(UseInst) == FoldedExpr && "bad SCEV with folded oper");
1910b57cec5SDimitry Andric
1920b57cec5SDimitry Andric if (MustDropExactFlag)
1930b57cec5SDimitry Andric UseInst->dropPoisonGeneratingFlags();
1940b57cec5SDimitry Andric
1950b57cec5SDimitry Andric ++NumElimOperand;
1960b57cec5SDimitry Andric Changed = true;
1970b57cec5SDimitry Andric if (IVOperand->use_empty())
1980b57cec5SDimitry Andric DeadInsts.emplace_back(IVOperand);
1990b57cec5SDimitry Andric return IVSrc;
2000b57cec5SDimitry Andric }
2010b57cec5SDimitry Andric
makeIVComparisonInvariant(ICmpInst * ICmp,Instruction * IVOperand)2020b57cec5SDimitry Andric bool SimplifyIndvar::makeIVComparisonInvariant(ICmpInst *ICmp,
203753f127fSDimitry Andric Instruction *IVOperand) {
204bdd1243dSDimitry Andric auto *Preheader = L->getLoopPreheader();
205bdd1243dSDimitry Andric if (!Preheader)
206bdd1243dSDimitry Andric return false;
2070b57cec5SDimitry Andric unsigned IVOperIdx = 0;
2080b57cec5SDimitry Andric ICmpInst::Predicate Pred = ICmp->getPredicate();
2090b57cec5SDimitry Andric if (IVOperand != ICmp->getOperand(0)) {
2100b57cec5SDimitry Andric // Swapped
2110b57cec5SDimitry Andric assert(IVOperand == ICmp->getOperand(1) && "Can't find IVOperand");
2120b57cec5SDimitry Andric IVOperIdx = 1;
2130b57cec5SDimitry Andric Pred = ICmpInst::getSwappedPredicate(Pred);
2140b57cec5SDimitry Andric }
2150b57cec5SDimitry Andric
2160b57cec5SDimitry Andric // Get the SCEVs for the ICmp operands (in the specific context of the
2170b57cec5SDimitry Andric // current loop)
2180b57cec5SDimitry Andric const Loop *ICmpLoop = LI->getLoopFor(ICmp->getParent());
2190b57cec5SDimitry Andric const SCEV *S = SE->getSCEVAtScope(ICmp->getOperand(IVOperIdx), ICmpLoop);
2200b57cec5SDimitry Andric const SCEV *X = SE->getSCEVAtScope(ICmp->getOperand(1 - IVOperIdx), ICmpLoop);
221bdd1243dSDimitry Andric auto LIP = SE->getLoopInvariantPredicate(Pred, S, X, L, ICmp);
222e8d8bef9SDimitry Andric if (!LIP)
2230b57cec5SDimitry Andric return false;
224e8d8bef9SDimitry Andric ICmpInst::Predicate InvariantPredicate = LIP->Pred;
225e8d8bef9SDimitry Andric const SCEV *InvariantLHS = LIP->LHS;
226e8d8bef9SDimitry Andric const SCEV *InvariantRHS = LIP->RHS;
2270b57cec5SDimitry Andric
228bdd1243dSDimitry Andric // Do not generate something ridiculous.
229bdd1243dSDimitry Andric auto *PHTerm = Preheader->getTerminator();
230bdd1243dSDimitry Andric if (Rewriter.isHighCostExpansion({InvariantLHS, InvariantRHS}, L,
23106c3fb27SDimitry Andric 2 * SCEVCheapExpansionBudget, TTI, PHTerm) ||
23206c3fb27SDimitry Andric !Rewriter.isSafeToExpandAt(InvariantLHS, PHTerm) ||
23306c3fb27SDimitry Andric !Rewriter.isSafeToExpandAt(InvariantRHS, PHTerm))
2340b57cec5SDimitry Andric return false;
235bdd1243dSDimitry Andric auto *NewLHS =
236bdd1243dSDimitry Andric Rewriter.expandCodeFor(InvariantLHS, IVOperand->getType(), PHTerm);
237bdd1243dSDimitry Andric auto *NewRHS =
238bdd1243dSDimitry Andric Rewriter.expandCodeFor(InvariantRHS, IVOperand->getType(), PHTerm);
2390b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Simplified comparison: " << *ICmp << '\n');
2400b57cec5SDimitry Andric ICmp->setPredicate(InvariantPredicate);
2410b57cec5SDimitry Andric ICmp->setOperand(0, NewLHS);
2420b57cec5SDimitry Andric ICmp->setOperand(1, NewRHS);
2430fca6ea1SDimitry Andric RunUnswitching = true;
2440b57cec5SDimitry Andric return true;
2450b57cec5SDimitry Andric }
2460b57cec5SDimitry Andric
2470b57cec5SDimitry Andric /// SimplifyIVUsers helper for eliminating useless
2480b57cec5SDimitry Andric /// comparisons against an induction variable.
eliminateIVComparison(ICmpInst * ICmp,Instruction * IVOperand)249753f127fSDimitry Andric void SimplifyIndvar::eliminateIVComparison(ICmpInst *ICmp,
250753f127fSDimitry Andric Instruction *IVOperand) {
2510b57cec5SDimitry Andric unsigned IVOperIdx = 0;
2520b57cec5SDimitry Andric ICmpInst::Predicate Pred = ICmp->getPredicate();
2530b57cec5SDimitry Andric ICmpInst::Predicate OriginalPred = Pred;
2540b57cec5SDimitry Andric if (IVOperand != ICmp->getOperand(0)) {
2550b57cec5SDimitry Andric // Swapped
2560b57cec5SDimitry Andric assert(IVOperand == ICmp->getOperand(1) && "Can't find IVOperand");
2570b57cec5SDimitry Andric IVOperIdx = 1;
2580b57cec5SDimitry Andric Pred = ICmpInst::getSwappedPredicate(Pred);
2590b57cec5SDimitry Andric }
2600b57cec5SDimitry Andric
2610b57cec5SDimitry Andric // Get the SCEVs for the ICmp operands (in the specific context of the
2620b57cec5SDimitry Andric // current loop)
2630b57cec5SDimitry Andric const Loop *ICmpLoop = LI->getLoopFor(ICmp->getParent());
2640b57cec5SDimitry Andric const SCEV *S = SE->getSCEVAtScope(ICmp->getOperand(IVOperIdx), ICmpLoop);
2650b57cec5SDimitry Andric const SCEV *X = SE->getSCEVAtScope(ICmp->getOperand(1 - IVOperIdx), ICmpLoop);
2660b57cec5SDimitry Andric
267fe6060f1SDimitry Andric // If the condition is always true or always false in the given context,
268fe6060f1SDimitry Andric // replace it with a constant value.
269fe6060f1SDimitry Andric SmallVector<Instruction *, 4> Users;
270fe6060f1SDimitry Andric for (auto *U : ICmp->users())
271fe6060f1SDimitry Andric Users.push_back(cast<Instruction>(U));
272fe6060f1SDimitry Andric const Instruction *CtxI = findCommonDominator(Users, *DT);
273fe6060f1SDimitry Andric if (auto Ev = SE->evaluatePredicateAt(Pred, S, X, CtxI)) {
274bdd1243dSDimitry Andric SE->forgetValue(ICmp);
275fe6060f1SDimitry Andric ICmp->replaceAllUsesWith(ConstantInt::getBool(ICmp->getContext(), *Ev));
2760b57cec5SDimitry Andric DeadInsts.emplace_back(ICmp);
2770b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Eliminated comparison: " << *ICmp << '\n');
2780b57cec5SDimitry Andric } else if (makeIVComparisonInvariant(ICmp, IVOperand)) {
2790b57cec5SDimitry Andric // fallthrough to end of function
2800b57cec5SDimitry Andric } else if (ICmpInst::isSigned(OriginalPred) &&
2810b57cec5SDimitry Andric SE->isKnownNonNegative(S) && SE->isKnownNonNegative(X)) {
2820b57cec5SDimitry Andric // If we were unable to make anything above, all we can is to canonicalize
2830b57cec5SDimitry Andric // the comparison hoping that it will open the doors for other
2840b57cec5SDimitry Andric // optimizations. If we find out that we compare two non-negative values,
2850b57cec5SDimitry Andric // we turn the instruction's predicate to its unsigned version. Note that
2860b57cec5SDimitry Andric // we cannot rely on Pred here unless we check if we have swapped it.
2870b57cec5SDimitry Andric assert(ICmp->getPredicate() == OriginalPred && "Predicate changed?");
2880b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Turn to unsigned comparison: " << *ICmp
2890b57cec5SDimitry Andric << '\n');
2900b57cec5SDimitry Andric ICmp->setPredicate(ICmpInst::getUnsignedPredicate(OriginalPred));
2910b57cec5SDimitry Andric } else
2920b57cec5SDimitry Andric return;
2930b57cec5SDimitry Andric
2940b57cec5SDimitry Andric ++NumElimCmp;
2950b57cec5SDimitry Andric Changed = true;
2960b57cec5SDimitry Andric }
2970b57cec5SDimitry Andric
eliminateSDiv(BinaryOperator * SDiv)2980b57cec5SDimitry Andric bool SimplifyIndvar::eliminateSDiv(BinaryOperator *SDiv) {
2990b57cec5SDimitry Andric // Get the SCEVs for the ICmp operands.
3000b57cec5SDimitry Andric auto *N = SE->getSCEV(SDiv->getOperand(0));
3010b57cec5SDimitry Andric auto *D = SE->getSCEV(SDiv->getOperand(1));
3020b57cec5SDimitry Andric
3030b57cec5SDimitry Andric // Simplify unnecessary loops away.
3040b57cec5SDimitry Andric const Loop *L = LI->getLoopFor(SDiv->getParent());
3050b57cec5SDimitry Andric N = SE->getSCEVAtScope(N, L);
3060b57cec5SDimitry Andric D = SE->getSCEVAtScope(D, L);
3070b57cec5SDimitry Andric
3080b57cec5SDimitry Andric // Replace sdiv by udiv if both of the operands are non-negative
3090b57cec5SDimitry Andric if (SE->isKnownNonNegative(N) && SE->isKnownNonNegative(D)) {
3100b57cec5SDimitry Andric auto *UDiv = BinaryOperator::Create(
3110b57cec5SDimitry Andric BinaryOperator::UDiv, SDiv->getOperand(0), SDiv->getOperand(1),
3120fca6ea1SDimitry Andric SDiv->getName() + ".udiv", SDiv->getIterator());
3130b57cec5SDimitry Andric UDiv->setIsExact(SDiv->isExact());
3140b57cec5SDimitry Andric SDiv->replaceAllUsesWith(UDiv);
3150fca6ea1SDimitry Andric UDiv->setDebugLoc(SDiv->getDebugLoc());
3160b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Simplified sdiv: " << *SDiv << '\n');
3170b57cec5SDimitry Andric ++NumSimplifiedSDiv;
3180b57cec5SDimitry Andric Changed = true;
3190b57cec5SDimitry Andric DeadInsts.push_back(SDiv);
3200b57cec5SDimitry Andric return true;
3210b57cec5SDimitry Andric }
3220b57cec5SDimitry Andric
3230b57cec5SDimitry Andric return false;
3240b57cec5SDimitry Andric }
3250b57cec5SDimitry Andric
3260b57cec5SDimitry Andric // i %s n -> i %u n if i >= 0 and n >= 0
replaceSRemWithURem(BinaryOperator * Rem)3270b57cec5SDimitry Andric void SimplifyIndvar::replaceSRemWithURem(BinaryOperator *Rem) {
3280b57cec5SDimitry Andric auto *N = Rem->getOperand(0), *D = Rem->getOperand(1);
3290b57cec5SDimitry Andric auto *URem = BinaryOperator::Create(BinaryOperator::URem, N, D,
3300fca6ea1SDimitry Andric Rem->getName() + ".urem", Rem->getIterator());
3310b57cec5SDimitry Andric Rem->replaceAllUsesWith(URem);
3320fca6ea1SDimitry Andric URem->setDebugLoc(Rem->getDebugLoc());
3330b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Simplified srem: " << *Rem << '\n');
3340b57cec5SDimitry Andric ++NumSimplifiedSRem;
3350b57cec5SDimitry Andric Changed = true;
3360b57cec5SDimitry Andric DeadInsts.emplace_back(Rem);
3370b57cec5SDimitry Andric }
3380b57cec5SDimitry Andric
3390b57cec5SDimitry Andric // i % n --> i if i is in [0,n).
replaceRemWithNumerator(BinaryOperator * Rem)3400b57cec5SDimitry Andric void SimplifyIndvar::replaceRemWithNumerator(BinaryOperator *Rem) {
3410b57cec5SDimitry Andric Rem->replaceAllUsesWith(Rem->getOperand(0));
3420b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Simplified rem: " << *Rem << '\n');
3430b57cec5SDimitry Andric ++NumElimRem;
3440b57cec5SDimitry Andric Changed = true;
3450b57cec5SDimitry Andric DeadInsts.emplace_back(Rem);
3460b57cec5SDimitry Andric }
3470b57cec5SDimitry Andric
3480b57cec5SDimitry Andric // (i+1) % n --> (i+1)==n?0:(i+1) if i is in [0,n).
replaceRemWithNumeratorOrZero(BinaryOperator * Rem)3490b57cec5SDimitry Andric void SimplifyIndvar::replaceRemWithNumeratorOrZero(BinaryOperator *Rem) {
3500b57cec5SDimitry Andric auto *T = Rem->getType();
3510b57cec5SDimitry Andric auto *N = Rem->getOperand(0), *D = Rem->getOperand(1);
3520fca6ea1SDimitry Andric ICmpInst *ICmp = new ICmpInst(Rem->getIterator(), ICmpInst::ICMP_EQ, N, D);
3530b57cec5SDimitry Andric SelectInst *Sel =
3540fca6ea1SDimitry Andric SelectInst::Create(ICmp, ConstantInt::get(T, 0), N, "iv.rem", Rem->getIterator());
3550b57cec5SDimitry Andric Rem->replaceAllUsesWith(Sel);
3560fca6ea1SDimitry Andric Sel->setDebugLoc(Rem->getDebugLoc());
3570b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Simplified rem: " << *Rem << '\n');
3580b57cec5SDimitry Andric ++NumElimRem;
3590b57cec5SDimitry Andric Changed = true;
3600b57cec5SDimitry Andric DeadInsts.emplace_back(Rem);
3610b57cec5SDimitry Andric }
3620b57cec5SDimitry Andric
3630b57cec5SDimitry Andric /// SimplifyIVUsers helper for eliminating useless remainder operations
3640b57cec5SDimitry Andric /// operating on an induction variable or replacing srem by urem.
simplifyIVRemainder(BinaryOperator * Rem,Instruction * IVOperand,bool IsSigned)365753f127fSDimitry Andric void SimplifyIndvar::simplifyIVRemainder(BinaryOperator *Rem,
366753f127fSDimitry Andric Instruction *IVOperand,
3670b57cec5SDimitry Andric bool IsSigned) {
3680b57cec5SDimitry Andric auto *NValue = Rem->getOperand(0);
3690b57cec5SDimitry Andric auto *DValue = Rem->getOperand(1);
3700b57cec5SDimitry Andric // We're only interested in the case where we know something about
3710b57cec5SDimitry Andric // the numerator, unless it is a srem, because we want to replace srem by urem
3720b57cec5SDimitry Andric // in general.
3730b57cec5SDimitry Andric bool UsedAsNumerator = IVOperand == NValue;
3740b57cec5SDimitry Andric if (!UsedAsNumerator && !IsSigned)
3750b57cec5SDimitry Andric return;
3760b57cec5SDimitry Andric
3770b57cec5SDimitry Andric const SCEV *N = SE->getSCEV(NValue);
3780b57cec5SDimitry Andric
3790b57cec5SDimitry Andric // Simplify unnecessary loops away.
3800b57cec5SDimitry Andric const Loop *ICmpLoop = LI->getLoopFor(Rem->getParent());
3810b57cec5SDimitry Andric N = SE->getSCEVAtScope(N, ICmpLoop);
3820b57cec5SDimitry Andric
3830b57cec5SDimitry Andric bool IsNumeratorNonNegative = !IsSigned || SE->isKnownNonNegative(N);
3840b57cec5SDimitry Andric
3850b57cec5SDimitry Andric // Do not proceed if the Numerator may be negative
3860b57cec5SDimitry Andric if (!IsNumeratorNonNegative)
3870b57cec5SDimitry Andric return;
3880b57cec5SDimitry Andric
3890b57cec5SDimitry Andric const SCEV *D = SE->getSCEV(DValue);
3900b57cec5SDimitry Andric D = SE->getSCEVAtScope(D, ICmpLoop);
3910b57cec5SDimitry Andric
3920b57cec5SDimitry Andric if (UsedAsNumerator) {
3930b57cec5SDimitry Andric auto LT = IsSigned ? ICmpInst::ICMP_SLT : ICmpInst::ICMP_ULT;
3940b57cec5SDimitry Andric if (SE->isKnownPredicate(LT, N, D)) {
3950b57cec5SDimitry Andric replaceRemWithNumerator(Rem);
3960b57cec5SDimitry Andric return;
3970b57cec5SDimitry Andric }
3980b57cec5SDimitry Andric
3990b57cec5SDimitry Andric auto *T = Rem->getType();
4000b57cec5SDimitry Andric const auto *NLessOne = SE->getMinusSCEV(N, SE->getOne(T));
4010b57cec5SDimitry Andric if (SE->isKnownPredicate(LT, NLessOne, D)) {
4020b57cec5SDimitry Andric replaceRemWithNumeratorOrZero(Rem);
4030b57cec5SDimitry Andric return;
4040b57cec5SDimitry Andric }
4050b57cec5SDimitry Andric }
4060b57cec5SDimitry Andric
4070b57cec5SDimitry Andric // Try to replace SRem with URem, if both N and D are known non-negative.
4080b57cec5SDimitry Andric // Since we had already check N, we only need to check D now
4090b57cec5SDimitry Andric if (!IsSigned || !SE->isKnownNonNegative(D))
4100b57cec5SDimitry Andric return;
4110b57cec5SDimitry Andric
4120b57cec5SDimitry Andric replaceSRemWithURem(Rem);
4130b57cec5SDimitry Andric }
4140b57cec5SDimitry Andric
eliminateOverflowIntrinsic(WithOverflowInst * WO)4150b57cec5SDimitry Andric bool SimplifyIndvar::eliminateOverflowIntrinsic(WithOverflowInst *WO) {
4160b57cec5SDimitry Andric const SCEV *LHS = SE->getSCEV(WO->getLHS());
4170b57cec5SDimitry Andric const SCEV *RHS = SE->getSCEV(WO->getRHS());
418fe6060f1SDimitry Andric if (!SE->willNotOverflow(WO->getBinaryOp(), WO->isSigned(), LHS, RHS))
4190b57cec5SDimitry Andric return false;
4200b57cec5SDimitry Andric
4210b57cec5SDimitry Andric // Proved no overflow, nuke the overflow check and, if possible, the overflow
4220b57cec5SDimitry Andric // intrinsic as well.
4230b57cec5SDimitry Andric
4240b57cec5SDimitry Andric BinaryOperator *NewResult = BinaryOperator::Create(
4250fca6ea1SDimitry Andric WO->getBinaryOp(), WO->getLHS(), WO->getRHS(), "", WO->getIterator());
4260b57cec5SDimitry Andric
4270b57cec5SDimitry Andric if (WO->isSigned())
4280b57cec5SDimitry Andric NewResult->setHasNoSignedWrap(true);
4290b57cec5SDimitry Andric else
4300b57cec5SDimitry Andric NewResult->setHasNoUnsignedWrap(true);
4310b57cec5SDimitry Andric
4320b57cec5SDimitry Andric SmallVector<ExtractValueInst *, 4> ToDelete;
4330b57cec5SDimitry Andric
4340b57cec5SDimitry Andric for (auto *U : WO->users()) {
4350b57cec5SDimitry Andric if (auto *EVI = dyn_cast<ExtractValueInst>(U)) {
4360b57cec5SDimitry Andric if (EVI->getIndices()[0] == 1)
4370b57cec5SDimitry Andric EVI->replaceAllUsesWith(ConstantInt::getFalse(WO->getContext()));
4380b57cec5SDimitry Andric else {
4390b57cec5SDimitry Andric assert(EVI->getIndices()[0] == 0 && "Only two possibilities!");
4400b57cec5SDimitry Andric EVI->replaceAllUsesWith(NewResult);
4410fca6ea1SDimitry Andric NewResult->setDebugLoc(EVI->getDebugLoc());
4420b57cec5SDimitry Andric }
4430b57cec5SDimitry Andric ToDelete.push_back(EVI);
4440b57cec5SDimitry Andric }
4450b57cec5SDimitry Andric }
4460b57cec5SDimitry Andric
4470b57cec5SDimitry Andric for (auto *EVI : ToDelete)
4480b57cec5SDimitry Andric EVI->eraseFromParent();
4490b57cec5SDimitry Andric
4500b57cec5SDimitry Andric if (WO->use_empty())
4510b57cec5SDimitry Andric WO->eraseFromParent();
4520b57cec5SDimitry Andric
453e8d8bef9SDimitry Andric Changed = true;
4540b57cec5SDimitry Andric return true;
4550b57cec5SDimitry Andric }
4560b57cec5SDimitry Andric
eliminateSaturatingIntrinsic(SaturatingInst * SI)4570b57cec5SDimitry Andric bool SimplifyIndvar::eliminateSaturatingIntrinsic(SaturatingInst *SI) {
4580b57cec5SDimitry Andric const SCEV *LHS = SE->getSCEV(SI->getLHS());
4590b57cec5SDimitry Andric const SCEV *RHS = SE->getSCEV(SI->getRHS());
460fe6060f1SDimitry Andric if (!SE->willNotOverflow(SI->getBinaryOp(), SI->isSigned(), LHS, RHS))
4610b57cec5SDimitry Andric return false;
4620b57cec5SDimitry Andric
4630b57cec5SDimitry Andric BinaryOperator *BO = BinaryOperator::Create(
4640fca6ea1SDimitry Andric SI->getBinaryOp(), SI->getLHS(), SI->getRHS(), SI->getName(), SI->getIterator());
4650b57cec5SDimitry Andric if (SI->isSigned())
4660b57cec5SDimitry Andric BO->setHasNoSignedWrap();
4670b57cec5SDimitry Andric else
4680b57cec5SDimitry Andric BO->setHasNoUnsignedWrap();
4690b57cec5SDimitry Andric
4700b57cec5SDimitry Andric SI->replaceAllUsesWith(BO);
4710fca6ea1SDimitry Andric BO->setDebugLoc(SI->getDebugLoc());
4720b57cec5SDimitry Andric DeadInsts.emplace_back(SI);
4730b57cec5SDimitry Andric Changed = true;
4740b57cec5SDimitry Andric return true;
4750b57cec5SDimitry Andric }
4760b57cec5SDimitry Andric
eliminateTrunc(TruncInst * TI)4770b57cec5SDimitry Andric bool SimplifyIndvar::eliminateTrunc(TruncInst *TI) {
4780b57cec5SDimitry Andric // It is always legal to replace
4790b57cec5SDimitry Andric // icmp <pred> i32 trunc(iv), n
4800b57cec5SDimitry Andric // with
4810b57cec5SDimitry Andric // icmp <pred> i64 sext(trunc(iv)), sext(n), if pred is signed predicate.
4820b57cec5SDimitry Andric // Or with
4830b57cec5SDimitry Andric // icmp <pred> i64 zext(trunc(iv)), zext(n), if pred is unsigned predicate.
4840b57cec5SDimitry Andric // Or with either of these if pred is an equality predicate.
4850b57cec5SDimitry Andric //
4860b57cec5SDimitry Andric // If we can prove that iv == sext(trunc(iv)) or iv == zext(trunc(iv)) for
4870b57cec5SDimitry Andric // every comparison which uses trunc, it means that we can replace each of
4880b57cec5SDimitry Andric // them with comparison of iv against sext/zext(n). We no longer need trunc
4890b57cec5SDimitry Andric // after that.
4900b57cec5SDimitry Andric //
4910b57cec5SDimitry Andric // TODO: Should we do this if we can widen *some* comparisons, but not all
4920b57cec5SDimitry Andric // of them? Sometimes it is enough to enable other optimizations, but the
4930b57cec5SDimitry Andric // trunc instruction will stay in the loop.
4940b57cec5SDimitry Andric Value *IV = TI->getOperand(0);
4950b57cec5SDimitry Andric Type *IVTy = IV->getType();
4960b57cec5SDimitry Andric const SCEV *IVSCEV = SE->getSCEV(IV);
4970b57cec5SDimitry Andric const SCEV *TISCEV = SE->getSCEV(TI);
4980b57cec5SDimitry Andric
4990b57cec5SDimitry Andric // Check if iv == zext(trunc(iv)) and if iv == sext(trunc(iv)). If so, we can
5000b57cec5SDimitry Andric // get rid of trunc
5010b57cec5SDimitry Andric bool DoesSExtCollapse = false;
5020b57cec5SDimitry Andric bool DoesZExtCollapse = false;
5030b57cec5SDimitry Andric if (IVSCEV == SE->getSignExtendExpr(TISCEV, IVTy))
5040b57cec5SDimitry Andric DoesSExtCollapse = true;
5050b57cec5SDimitry Andric if (IVSCEV == SE->getZeroExtendExpr(TISCEV, IVTy))
5060b57cec5SDimitry Andric DoesZExtCollapse = true;
5070b57cec5SDimitry Andric
5080b57cec5SDimitry Andric // If neither sext nor zext does collapse, it is not profitable to do any
5090b57cec5SDimitry Andric // transform. Bail.
5100b57cec5SDimitry Andric if (!DoesSExtCollapse && !DoesZExtCollapse)
5110b57cec5SDimitry Andric return false;
5120b57cec5SDimitry Andric
5130b57cec5SDimitry Andric // Collect users of the trunc that look like comparisons against invariants.
5140b57cec5SDimitry Andric // Bail if we find something different.
5150b57cec5SDimitry Andric SmallVector<ICmpInst *, 4> ICmpUsers;
5160b57cec5SDimitry Andric for (auto *U : TI->users()) {
5170b57cec5SDimitry Andric // We don't care about users in unreachable blocks.
5180b57cec5SDimitry Andric if (isa<Instruction>(U) &&
5190b57cec5SDimitry Andric !DT->isReachableFromEntry(cast<Instruction>(U)->getParent()))
5200b57cec5SDimitry Andric continue;
5210b57cec5SDimitry Andric ICmpInst *ICI = dyn_cast<ICmpInst>(U);
5220b57cec5SDimitry Andric if (!ICI) return false;
5230b57cec5SDimitry Andric assert(L->contains(ICI->getParent()) && "LCSSA form broken?");
5240b57cec5SDimitry Andric if (!(ICI->getOperand(0) == TI && L->isLoopInvariant(ICI->getOperand(1))) &&
5250b57cec5SDimitry Andric !(ICI->getOperand(1) == TI && L->isLoopInvariant(ICI->getOperand(0))))
5260b57cec5SDimitry Andric return false;
5270b57cec5SDimitry Andric // If we cannot get rid of trunc, bail.
5280b57cec5SDimitry Andric if (ICI->isSigned() && !DoesSExtCollapse)
5290b57cec5SDimitry Andric return false;
5300b57cec5SDimitry Andric if (ICI->isUnsigned() && !DoesZExtCollapse)
5310b57cec5SDimitry Andric return false;
5320b57cec5SDimitry Andric // For equality, either signed or unsigned works.
5330b57cec5SDimitry Andric ICmpUsers.push_back(ICI);
5340b57cec5SDimitry Andric }
5350b57cec5SDimitry Andric
5360b57cec5SDimitry Andric auto CanUseZExt = [&](ICmpInst *ICI) {
5370b57cec5SDimitry Andric // Unsigned comparison can be widened as unsigned.
5380b57cec5SDimitry Andric if (ICI->isUnsigned())
5390b57cec5SDimitry Andric return true;
5400b57cec5SDimitry Andric // Is it profitable to do zext?
5410b57cec5SDimitry Andric if (!DoesZExtCollapse)
5420b57cec5SDimitry Andric return false;
5430b57cec5SDimitry Andric // For equality, we can safely zext both parts.
5440b57cec5SDimitry Andric if (ICI->isEquality())
5450b57cec5SDimitry Andric return true;
5460b57cec5SDimitry Andric // Otherwise we can only use zext when comparing two non-negative or two
5470b57cec5SDimitry Andric // negative values. But in practice, we will never pass DoesZExtCollapse
5480b57cec5SDimitry Andric // check for a negative value, because zext(trunc(x)) is non-negative. So
5490b57cec5SDimitry Andric // it only make sense to check for non-negativity here.
5500b57cec5SDimitry Andric const SCEV *SCEVOP1 = SE->getSCEV(ICI->getOperand(0));
5510b57cec5SDimitry Andric const SCEV *SCEVOP2 = SE->getSCEV(ICI->getOperand(1));
5520b57cec5SDimitry Andric return SE->isKnownNonNegative(SCEVOP1) && SE->isKnownNonNegative(SCEVOP2);
5530b57cec5SDimitry Andric };
5540b57cec5SDimitry Andric // Replace all comparisons against trunc with comparisons against IV.
5550b57cec5SDimitry Andric for (auto *ICI : ICmpUsers) {
5560b57cec5SDimitry Andric bool IsSwapped = L->isLoopInvariant(ICI->getOperand(0));
5570b57cec5SDimitry Andric auto *Op1 = IsSwapped ? ICI->getOperand(0) : ICI->getOperand(1);
5585f757f3fSDimitry Andric IRBuilder<> Builder(ICI);
5595f757f3fSDimitry Andric Value *Ext = nullptr;
5600b57cec5SDimitry Andric // For signed/unsigned predicate, replace the old comparison with comparison
5610b57cec5SDimitry Andric // of immediate IV against sext/zext of the invariant argument. If we can
5620b57cec5SDimitry Andric // use either sext or zext (i.e. we are dealing with equality predicate),
5630b57cec5SDimitry Andric // then prefer zext as a more canonical form.
5640b57cec5SDimitry Andric // TODO: If we see a signed comparison which can be turned into unsigned,
5650b57cec5SDimitry Andric // we can do it here for canonicalization purposes.
5660b57cec5SDimitry Andric ICmpInst::Predicate Pred = ICI->getPredicate();
5670b57cec5SDimitry Andric if (IsSwapped) Pred = ICmpInst::getSwappedPredicate(Pred);
5680b57cec5SDimitry Andric if (CanUseZExt(ICI)) {
5690b57cec5SDimitry Andric assert(DoesZExtCollapse && "Unprofitable zext?");
5705f757f3fSDimitry Andric Ext = Builder.CreateZExt(Op1, IVTy, "zext");
5710b57cec5SDimitry Andric Pred = ICmpInst::getUnsignedPredicate(Pred);
5720b57cec5SDimitry Andric } else {
5730b57cec5SDimitry Andric assert(DoesSExtCollapse && "Unprofitable sext?");
5745f757f3fSDimitry Andric Ext = Builder.CreateSExt(Op1, IVTy, "sext");
5750b57cec5SDimitry Andric assert(Pred == ICmpInst::getSignedPredicate(Pred) && "Must be signed!");
5760b57cec5SDimitry Andric }
5770b57cec5SDimitry Andric bool Changed;
5780b57cec5SDimitry Andric L->makeLoopInvariant(Ext, Changed);
5790b57cec5SDimitry Andric (void)Changed;
5805f757f3fSDimitry Andric auto *NewCmp = Builder.CreateICmp(Pred, IV, Ext);
5815f757f3fSDimitry Andric ICI->replaceAllUsesWith(NewCmp);
5820b57cec5SDimitry Andric DeadInsts.emplace_back(ICI);
5830b57cec5SDimitry Andric }
5840b57cec5SDimitry Andric
5850b57cec5SDimitry Andric // Trunc no longer needed.
586fcaf7f86SDimitry Andric TI->replaceAllUsesWith(PoisonValue::get(TI->getType()));
5870b57cec5SDimitry Andric DeadInsts.emplace_back(TI);
5880b57cec5SDimitry Andric return true;
5890b57cec5SDimitry Andric }
5900b57cec5SDimitry Andric
5910b57cec5SDimitry Andric /// Eliminate an operation that consumes a simple IV and has no observable
5920b57cec5SDimitry Andric /// side-effect given the range of IV values. IVOperand is guaranteed SCEVable,
5930b57cec5SDimitry Andric /// but UseInst may not be.
eliminateIVUser(Instruction * UseInst,Instruction * IVOperand)5940b57cec5SDimitry Andric bool SimplifyIndvar::eliminateIVUser(Instruction *UseInst,
5950b57cec5SDimitry Andric Instruction *IVOperand) {
5960b57cec5SDimitry Andric if (ICmpInst *ICmp = dyn_cast<ICmpInst>(UseInst)) {
5970b57cec5SDimitry Andric eliminateIVComparison(ICmp, IVOperand);
5980b57cec5SDimitry Andric return true;
5990b57cec5SDimitry Andric }
6000b57cec5SDimitry Andric if (BinaryOperator *Bin = dyn_cast<BinaryOperator>(UseInst)) {
6010b57cec5SDimitry Andric bool IsSRem = Bin->getOpcode() == Instruction::SRem;
6020b57cec5SDimitry Andric if (IsSRem || Bin->getOpcode() == Instruction::URem) {
6030b57cec5SDimitry Andric simplifyIVRemainder(Bin, IVOperand, IsSRem);
6040b57cec5SDimitry Andric return true;
6050b57cec5SDimitry Andric }
6060b57cec5SDimitry Andric
6070b57cec5SDimitry Andric if (Bin->getOpcode() == Instruction::SDiv)
6080b57cec5SDimitry Andric return eliminateSDiv(Bin);
6090b57cec5SDimitry Andric }
6100b57cec5SDimitry Andric
6110b57cec5SDimitry Andric if (auto *WO = dyn_cast<WithOverflowInst>(UseInst))
6120b57cec5SDimitry Andric if (eliminateOverflowIntrinsic(WO))
6130b57cec5SDimitry Andric return true;
6140b57cec5SDimitry Andric
6150b57cec5SDimitry Andric if (auto *SI = dyn_cast<SaturatingInst>(UseInst))
6160b57cec5SDimitry Andric if (eliminateSaturatingIntrinsic(SI))
6170b57cec5SDimitry Andric return true;
6180b57cec5SDimitry Andric
6190b57cec5SDimitry Andric if (auto *TI = dyn_cast<TruncInst>(UseInst))
6200b57cec5SDimitry Andric if (eliminateTrunc(TI))
6210b57cec5SDimitry Andric return true;
6220b57cec5SDimitry Andric
6230b57cec5SDimitry Andric if (eliminateIdentitySCEV(UseInst, IVOperand))
6240b57cec5SDimitry Andric return true;
6250b57cec5SDimitry Andric
6260b57cec5SDimitry Andric return false;
6270b57cec5SDimitry Andric }
6280b57cec5SDimitry Andric
GetLoopInvariantInsertPosition(Loop * L,Instruction * Hint)6290b57cec5SDimitry Andric static Instruction *GetLoopInvariantInsertPosition(Loop *L, Instruction *Hint) {
6300b57cec5SDimitry Andric if (auto *BB = L->getLoopPreheader())
6310b57cec5SDimitry Andric return BB->getTerminator();
6320b57cec5SDimitry Andric
6330b57cec5SDimitry Andric return Hint;
6340b57cec5SDimitry Andric }
6350b57cec5SDimitry Andric
6365ffd83dbSDimitry Andric /// Replace the UseInst with a loop invariant expression if it is safe.
replaceIVUserWithLoopInvariant(Instruction * I)6370b57cec5SDimitry Andric bool SimplifyIndvar::replaceIVUserWithLoopInvariant(Instruction *I) {
6380b57cec5SDimitry Andric if (!SE->isSCEVable(I->getType()))
6390b57cec5SDimitry Andric return false;
6400b57cec5SDimitry Andric
6410b57cec5SDimitry Andric // Get the symbolic expression for this instruction.
6420b57cec5SDimitry Andric const SCEV *S = SE->getSCEV(I);
6430b57cec5SDimitry Andric
6440b57cec5SDimitry Andric if (!SE->isLoopInvariant(S, L))
6450b57cec5SDimitry Andric return false;
6460b57cec5SDimitry Andric
6470b57cec5SDimitry Andric // Do not generate something ridiculous even if S is loop invariant.
6485ffd83dbSDimitry Andric if (Rewriter.isHighCostExpansion(S, L, SCEVCheapExpansionBudget, TTI, I))
6490b57cec5SDimitry Andric return false;
6500b57cec5SDimitry Andric
6510b57cec5SDimitry Andric auto *IP = GetLoopInvariantInsertPosition(L, I);
6525ffd83dbSDimitry Andric
653fcaf7f86SDimitry Andric if (!Rewriter.isSafeToExpandAt(S, IP)) {
6545ffd83dbSDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Can not replace IV user: " << *I
6555ffd83dbSDimitry Andric << " with non-speculable loop invariant: " << *S << '\n');
6565ffd83dbSDimitry Andric return false;
6575ffd83dbSDimitry Andric }
6585ffd83dbSDimitry Andric
6590b57cec5SDimitry Andric auto *Invariant = Rewriter.expandCodeFor(S, I->getType(), IP);
6600fca6ea1SDimitry Andric bool NeedToEmitLCSSAPhis = false;
6610fca6ea1SDimitry Andric if (!LI->replacementPreservesLCSSAForm(I, Invariant))
6620fca6ea1SDimitry Andric NeedToEmitLCSSAPhis = true;
6630b57cec5SDimitry Andric
6640b57cec5SDimitry Andric I->replaceAllUsesWith(Invariant);
6650b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Replace IV user: " << *I
6660b57cec5SDimitry Andric << " with loop invariant: " << *S << '\n');
6670fca6ea1SDimitry Andric
6680fca6ea1SDimitry Andric if (NeedToEmitLCSSAPhis) {
6690fca6ea1SDimitry Andric SmallVector<Instruction *, 1> NeedsLCSSAPhis;
6700fca6ea1SDimitry Andric NeedsLCSSAPhis.push_back(cast<Instruction>(Invariant));
6710fca6ea1SDimitry Andric formLCSSAForInstructions(NeedsLCSSAPhis, *DT, *LI, SE);
6720fca6ea1SDimitry Andric LLVM_DEBUG(dbgs() << " INDVARS: Replacement breaks LCSSA form"
6730fca6ea1SDimitry Andric << " inserting LCSSA Phis" << '\n');
6740fca6ea1SDimitry Andric }
6750b57cec5SDimitry Andric ++NumFoldedUser;
6760b57cec5SDimitry Andric Changed = true;
6770b57cec5SDimitry Andric DeadInsts.emplace_back(I);
6780b57cec5SDimitry Andric return true;
6790b57cec5SDimitry Andric }
6800b57cec5SDimitry Andric
681753f127fSDimitry Andric /// Eliminate redundant type cast between integer and float.
replaceFloatIVWithIntegerIV(Instruction * UseInst)682753f127fSDimitry Andric bool SimplifyIndvar::replaceFloatIVWithIntegerIV(Instruction *UseInst) {
683fcaf7f86SDimitry Andric if (UseInst->getOpcode() != CastInst::SIToFP &&
684fcaf7f86SDimitry Andric UseInst->getOpcode() != CastInst::UIToFP)
685753f127fSDimitry Andric return false;
686753f127fSDimitry Andric
687bdd1243dSDimitry Andric Instruction *IVOperand = cast<Instruction>(UseInst->getOperand(0));
688753f127fSDimitry Andric // Get the symbolic expression for this instruction.
689fcaf7f86SDimitry Andric const SCEV *IV = SE->getSCEV(IVOperand);
6905f757f3fSDimitry Andric int MaskBits;
691fcaf7f86SDimitry Andric if (UseInst->getOpcode() == CastInst::SIToFP)
6925f757f3fSDimitry Andric MaskBits = (int)SE->getSignedRange(IV).getMinSignedBits();
693fcaf7f86SDimitry Andric else
6945f757f3fSDimitry Andric MaskBits = (int)SE->getUnsignedRange(IV).getActiveBits();
6955f757f3fSDimitry Andric int DestNumSigBits = UseInst->getType()->getFPMantissaWidth();
696fcaf7f86SDimitry Andric if (MaskBits <= DestNumSigBits) {
697753f127fSDimitry Andric for (User *U : UseInst->users()) {
698fcaf7f86SDimitry Andric // Match for fptosi/fptoui of sitofp and with same type.
699fcaf7f86SDimitry Andric auto *CI = dyn_cast<CastInst>(U);
700bdd1243dSDimitry Andric if (!CI)
701753f127fSDimitry Andric continue;
702753f127fSDimitry Andric
703fcaf7f86SDimitry Andric CastInst::CastOps Opcode = CI->getOpcode();
704fcaf7f86SDimitry Andric if (Opcode != CastInst::FPToSI && Opcode != CastInst::FPToUI)
705fcaf7f86SDimitry Andric continue;
706fcaf7f86SDimitry Andric
707bdd1243dSDimitry Andric Value *Conv = nullptr;
708bdd1243dSDimitry Andric if (IVOperand->getType() != CI->getType()) {
709bdd1243dSDimitry Andric IRBuilder<> Builder(CI);
710bdd1243dSDimitry Andric StringRef Name = IVOperand->getName();
711bdd1243dSDimitry Andric // To match InstCombine logic, we only need sext if both fptosi and
712bdd1243dSDimitry Andric // sitofp are used. If one of them is unsigned, then we can use zext.
713bdd1243dSDimitry Andric if (SE->getTypeSizeInBits(IVOperand->getType()) >
714bdd1243dSDimitry Andric SE->getTypeSizeInBits(CI->getType())) {
715bdd1243dSDimitry Andric Conv = Builder.CreateTrunc(IVOperand, CI->getType(), Name + ".trunc");
716bdd1243dSDimitry Andric } else if (Opcode == CastInst::FPToUI ||
717bdd1243dSDimitry Andric UseInst->getOpcode() == CastInst::UIToFP) {
718bdd1243dSDimitry Andric Conv = Builder.CreateZExt(IVOperand, CI->getType(), Name + ".zext");
719bdd1243dSDimitry Andric } else {
720bdd1243dSDimitry Andric Conv = Builder.CreateSExt(IVOperand, CI->getType(), Name + ".sext");
721bdd1243dSDimitry Andric }
722bdd1243dSDimitry Andric } else
723bdd1243dSDimitry Andric Conv = IVOperand;
724bdd1243dSDimitry Andric
725bdd1243dSDimitry Andric CI->replaceAllUsesWith(Conv);
726753f127fSDimitry Andric DeadInsts.push_back(CI);
727753f127fSDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Replace IV user: " << *CI
728bdd1243dSDimitry Andric << " with: " << *Conv << '\n');
729753f127fSDimitry Andric
730753f127fSDimitry Andric ++NumFoldedUser;
731753f127fSDimitry Andric Changed = true;
732753f127fSDimitry Andric }
733753f127fSDimitry Andric }
734753f127fSDimitry Andric
735753f127fSDimitry Andric return Changed;
736753f127fSDimitry Andric }
737753f127fSDimitry Andric
7380b57cec5SDimitry Andric /// Eliminate any operation that SCEV can prove is an identity function.
eliminateIdentitySCEV(Instruction * UseInst,Instruction * IVOperand)7390b57cec5SDimitry Andric bool SimplifyIndvar::eliminateIdentitySCEV(Instruction *UseInst,
7400b57cec5SDimitry Andric Instruction *IVOperand) {
7410b57cec5SDimitry Andric if (!SE->isSCEVable(UseInst->getType()) ||
74256727255SDimitry Andric UseInst->getType() != IVOperand->getType())
74356727255SDimitry Andric return false;
74456727255SDimitry Andric
74556727255SDimitry Andric const SCEV *UseSCEV = SE->getSCEV(UseInst);
74656727255SDimitry Andric if (UseSCEV != SE->getSCEV(IVOperand))
7470b57cec5SDimitry Andric return false;
7480b57cec5SDimitry Andric
7490b57cec5SDimitry Andric // getSCEV(X) == getSCEV(Y) does not guarantee that X and Y are related in the
7500b57cec5SDimitry Andric // dominator tree, even if X is an operand to Y. For instance, in
7510b57cec5SDimitry Andric //
7520b57cec5SDimitry Andric // %iv = phi i32 {0,+,1}
7530b57cec5SDimitry Andric // br %cond, label %left, label %merge
7540b57cec5SDimitry Andric //
7550b57cec5SDimitry Andric // left:
7560b57cec5SDimitry Andric // %X = add i32 %iv, 0
7570b57cec5SDimitry Andric // br label %merge
7580b57cec5SDimitry Andric //
7590b57cec5SDimitry Andric // merge:
7600b57cec5SDimitry Andric // %M = phi (%X, %iv)
7610b57cec5SDimitry Andric //
7620b57cec5SDimitry Andric // getSCEV(%M) == getSCEV(%X) == {0,+,1}, but %X does not dominate %M, and
7630b57cec5SDimitry Andric // %M.replaceAllUsesWith(%X) would be incorrect.
7640b57cec5SDimitry Andric
7650b57cec5SDimitry Andric if (isa<PHINode>(UseInst))
7660b57cec5SDimitry Andric // If UseInst is not a PHI node then we know that IVOperand dominates
7670b57cec5SDimitry Andric // UseInst directly from the legality of SSA.
7680b57cec5SDimitry Andric if (!DT || !DT->dominates(IVOperand, UseInst))
7690b57cec5SDimitry Andric return false;
7700b57cec5SDimitry Andric
7710b57cec5SDimitry Andric if (!LI->replacementPreservesLCSSAForm(UseInst, IVOperand))
7720b57cec5SDimitry Andric return false;
7730b57cec5SDimitry Andric
77456727255SDimitry Andric // Make sure the operand is not more poisonous than the instruction.
77556727255SDimitry Andric if (!impliesPoison(IVOperand, UseInst)) {
77656727255SDimitry Andric SmallVector<Instruction *> DropPoisonGeneratingInsts;
77756727255SDimitry Andric if (!SE->canReuseInstruction(UseSCEV, IVOperand, DropPoisonGeneratingInsts))
77856727255SDimitry Andric return false;
77956727255SDimitry Andric
78056727255SDimitry Andric for (Instruction *I : DropPoisonGeneratingInsts)
7810fca6ea1SDimitry Andric I->dropPoisonGeneratingAnnotations();
78256727255SDimitry Andric }
78356727255SDimitry Andric
7840b57cec5SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Eliminated identity: " << *UseInst << '\n');
7850b57cec5SDimitry Andric
786bdd1243dSDimitry Andric SE->forgetValue(UseInst);
7870b57cec5SDimitry Andric UseInst->replaceAllUsesWith(IVOperand);
7880b57cec5SDimitry Andric ++NumElimIdentity;
7890b57cec5SDimitry Andric Changed = true;
7900b57cec5SDimitry Andric DeadInsts.emplace_back(UseInst);
7910b57cec5SDimitry Andric return true;
7920b57cec5SDimitry Andric }
7930b57cec5SDimitry Andric
strengthenBinaryOp(BinaryOperator * BO,Instruction * IVOperand)79406c3fb27SDimitry Andric bool SimplifyIndvar::strengthenBinaryOp(BinaryOperator *BO,
79506c3fb27SDimitry Andric Instruction *IVOperand) {
79606c3fb27SDimitry Andric return (isa<OverflowingBinaryOperator>(BO) &&
79706c3fb27SDimitry Andric strengthenOverflowingOperation(BO, IVOperand)) ||
79806c3fb27SDimitry Andric (isa<ShlOperator>(BO) && strengthenRightShift(BO, IVOperand));
79906c3fb27SDimitry Andric }
80006c3fb27SDimitry Andric
8010b57cec5SDimitry Andric /// Annotate BO with nsw / nuw if it provably does not signed-overflow /
8020b57cec5SDimitry Andric /// unsigned-overflow. Returns true if anything changed, false otherwise.
strengthenOverflowingOperation(BinaryOperator * BO,Instruction * IVOperand)8030b57cec5SDimitry Andric bool SimplifyIndvar::strengthenOverflowingOperation(BinaryOperator *BO,
804753f127fSDimitry Andric Instruction *IVOperand) {
805753f127fSDimitry Andric auto Flags = SE->getStrengthenedNoWrapFlagsFromBinOp(
806fe6060f1SDimitry Andric cast<OverflowingBinaryOperator>(BO));
8070b57cec5SDimitry Andric
808753f127fSDimitry Andric if (!Flags)
809753f127fSDimitry Andric return false;
8100b57cec5SDimitry Andric
811753f127fSDimitry Andric BO->setHasNoUnsignedWrap(ScalarEvolution::maskFlags(*Flags, SCEV::FlagNUW) ==
812fe6060f1SDimitry Andric SCEV::FlagNUW);
813753f127fSDimitry Andric BO->setHasNoSignedWrap(ScalarEvolution::maskFlags(*Flags, SCEV::FlagNSW) ==
814fe6060f1SDimitry Andric SCEV::FlagNSW);
8150b57cec5SDimitry Andric
816fe6060f1SDimitry Andric // The getStrengthenedNoWrapFlagsFromBinOp() check inferred additional nowrap
817fe6060f1SDimitry Andric // flags on addrecs while performing zero/sign extensions. We could call
818fe6060f1SDimitry Andric // forgetValue() here to make sure those flags also propagate to any other
819fe6060f1SDimitry Andric // SCEV expressions based on the addrec. However, this can have pathological
820fe6060f1SDimitry Andric // compile-time impact, see https://bugs.llvm.org/show_bug.cgi?id=50384.
821753f127fSDimitry Andric return true;
8220b57cec5SDimitry Andric }
8230b57cec5SDimitry Andric
8240b57cec5SDimitry Andric /// Annotate the Shr in (X << IVOperand) >> C as exact using the
8250b57cec5SDimitry Andric /// information from the IV's range. Returns true if anything changed, false
8260b57cec5SDimitry Andric /// otherwise.
strengthenRightShift(BinaryOperator * BO,Instruction * IVOperand)8270b57cec5SDimitry Andric bool SimplifyIndvar::strengthenRightShift(BinaryOperator *BO,
828753f127fSDimitry Andric Instruction *IVOperand) {
8290b57cec5SDimitry Andric if (BO->getOpcode() == Instruction::Shl) {
8300b57cec5SDimitry Andric bool Changed = false;
8310b57cec5SDimitry Andric ConstantRange IVRange = SE->getUnsignedRange(SE->getSCEV(IVOperand));
8320b57cec5SDimitry Andric for (auto *U : BO->users()) {
8330b57cec5SDimitry Andric const APInt *C;
8340b57cec5SDimitry Andric if (match(U,
8350b57cec5SDimitry Andric m_AShr(m_Shl(m_Value(), m_Specific(IVOperand)), m_APInt(C))) ||
8360b57cec5SDimitry Andric match(U,
8370b57cec5SDimitry Andric m_LShr(m_Shl(m_Value(), m_Specific(IVOperand)), m_APInt(C)))) {
8380b57cec5SDimitry Andric BinaryOperator *Shr = cast<BinaryOperator>(U);
8390b57cec5SDimitry Andric if (!Shr->isExact() && IVRange.getUnsignedMin().uge(*C)) {
8400b57cec5SDimitry Andric Shr->setIsExact(true);
8410b57cec5SDimitry Andric Changed = true;
8420b57cec5SDimitry Andric }
8430b57cec5SDimitry Andric }
8440b57cec5SDimitry Andric }
8450b57cec5SDimitry Andric return Changed;
8460b57cec5SDimitry Andric }
8470b57cec5SDimitry Andric
8480b57cec5SDimitry Andric return false;
8490b57cec5SDimitry Andric }
8500b57cec5SDimitry Andric
8510b57cec5SDimitry Andric /// Add all uses of Def to the current IV's worklist.
pushIVUsers(Instruction * Def,SmallPtrSet<Instruction *,16> & Simplified,SmallVectorImpl<std::pair<Instruction *,Instruction * >> & SimpleIVUsers)8520fca6ea1SDimitry Andric void SimplifyIndvar::pushIVUsers(
8530fca6ea1SDimitry Andric Instruction *Def, SmallPtrSet<Instruction *, 16> &Simplified,
8540b57cec5SDimitry Andric SmallVectorImpl<std::pair<Instruction *, Instruction *>> &SimpleIVUsers) {
8550b57cec5SDimitry Andric for (User *U : Def->users()) {
8560b57cec5SDimitry Andric Instruction *UI = cast<Instruction>(U);
8570b57cec5SDimitry Andric
8580b57cec5SDimitry Andric // Avoid infinite or exponential worklist processing.
8590b57cec5SDimitry Andric // Also ensure unique worklist users.
8600b57cec5SDimitry Andric // If Def is a LoopPhi, it may not be in the Simplified set, so check for
8610b57cec5SDimitry Andric // self edges first.
8620b57cec5SDimitry Andric if (UI == Def)
8630b57cec5SDimitry Andric continue;
8640b57cec5SDimitry Andric
8650b57cec5SDimitry Andric // Only change the current Loop, do not change the other parts (e.g. other
8660b57cec5SDimitry Andric // Loops).
8670b57cec5SDimitry Andric if (!L->contains(UI))
8680b57cec5SDimitry Andric continue;
8690b57cec5SDimitry Andric
8700b57cec5SDimitry Andric // Do not push the same instruction more than once.
8710b57cec5SDimitry Andric if (!Simplified.insert(UI).second)
8720b57cec5SDimitry Andric continue;
8730b57cec5SDimitry Andric
8740b57cec5SDimitry Andric SimpleIVUsers.push_back(std::make_pair(UI, Def));
8750b57cec5SDimitry Andric }
8760b57cec5SDimitry Andric }
8770b57cec5SDimitry Andric
8780b57cec5SDimitry Andric /// Return true if this instruction generates a simple SCEV
8790b57cec5SDimitry Andric /// expression in terms of that IV.
8800b57cec5SDimitry Andric ///
8810b57cec5SDimitry Andric /// This is similar to IVUsers' isInteresting() but processes each instruction
8820b57cec5SDimitry Andric /// non-recursively when the operand is already known to be a simpleIVUser.
8830b57cec5SDimitry Andric ///
isSimpleIVUser(Instruction * I,const Loop * L,ScalarEvolution * SE)8840b57cec5SDimitry Andric static bool isSimpleIVUser(Instruction *I, const Loop *L, ScalarEvolution *SE) {
8850b57cec5SDimitry Andric if (!SE->isSCEVable(I->getType()))
8860b57cec5SDimitry Andric return false;
8870b57cec5SDimitry Andric
8880b57cec5SDimitry Andric // Get the symbolic expression for this instruction.
8890b57cec5SDimitry Andric const SCEV *S = SE->getSCEV(I);
8900b57cec5SDimitry Andric
8910b57cec5SDimitry Andric // Only consider affine recurrences.
8920b57cec5SDimitry Andric const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S);
8930b57cec5SDimitry Andric if (AR && AR->getLoop() == L)
8940b57cec5SDimitry Andric return true;
8950b57cec5SDimitry Andric
8960b57cec5SDimitry Andric return false;
8970b57cec5SDimitry Andric }
8980b57cec5SDimitry Andric
8990b57cec5SDimitry Andric /// Iteratively perform simplification on a worklist of users
9000b57cec5SDimitry Andric /// of the specified induction variable. Each successive simplification may push
9010b57cec5SDimitry Andric /// more users which may themselves be candidates for simplification.
9020b57cec5SDimitry Andric ///
9030b57cec5SDimitry Andric /// This algorithm does not require IVUsers analysis. Instead, it simplifies
9040b57cec5SDimitry Andric /// instructions in-place during analysis. Rather than rewriting induction
9050b57cec5SDimitry Andric /// variables bottom-up from their users, it transforms a chain of IVUsers
9060b57cec5SDimitry Andric /// top-down, updating the IR only when it encounters a clear optimization
9070b57cec5SDimitry Andric /// opportunity.
9080b57cec5SDimitry Andric ///
9090b57cec5SDimitry Andric /// Once DisableIVRewrite is default, LSR will be the only client of IVUsers.
9100b57cec5SDimitry Andric ///
simplifyUsers(PHINode * CurrIV,IVVisitor * V)9110b57cec5SDimitry Andric void SimplifyIndvar::simplifyUsers(PHINode *CurrIV, IVVisitor *V) {
9120b57cec5SDimitry Andric if (!SE->isSCEVable(CurrIV->getType()))
9130b57cec5SDimitry Andric return;
9140b57cec5SDimitry Andric
9150b57cec5SDimitry Andric // Instructions processed by SimplifyIndvar for CurrIV.
9160b57cec5SDimitry Andric SmallPtrSet<Instruction*,16> Simplified;
9170b57cec5SDimitry Andric
9180b57cec5SDimitry Andric // Use-def pairs if IV users waiting to be processed for CurrIV.
9190b57cec5SDimitry Andric SmallVector<std::pair<Instruction*, Instruction*>, 8> SimpleIVUsers;
9200b57cec5SDimitry Andric
9210b57cec5SDimitry Andric // Push users of the current LoopPhi. In rare cases, pushIVUsers may be
9220b57cec5SDimitry Andric // called multiple times for the same LoopPhi. This is the proper thing to
9230b57cec5SDimitry Andric // do for loop header phis that use each other.
9240fca6ea1SDimitry Andric pushIVUsers(CurrIV, Simplified, SimpleIVUsers);
9250b57cec5SDimitry Andric
9260b57cec5SDimitry Andric while (!SimpleIVUsers.empty()) {
9270b57cec5SDimitry Andric std::pair<Instruction*, Instruction*> UseOper =
9280b57cec5SDimitry Andric SimpleIVUsers.pop_back_val();
9290b57cec5SDimitry Andric Instruction *UseInst = UseOper.first;
9300b57cec5SDimitry Andric
9310b57cec5SDimitry Andric // If a user of the IndVar is trivially dead, we prefer just to mark it dead
9320b57cec5SDimitry Andric // rather than try to do some complex analysis or transformation (such as
9330b57cec5SDimitry Andric // widening) basing on it.
9340b57cec5SDimitry Andric // TODO: Propagate TLI and pass it here to handle more cases.
9350b57cec5SDimitry Andric if (isInstructionTriviallyDead(UseInst, /* TLI */ nullptr)) {
9360b57cec5SDimitry Andric DeadInsts.emplace_back(UseInst);
9370b57cec5SDimitry Andric continue;
9380b57cec5SDimitry Andric }
9390b57cec5SDimitry Andric
9400b57cec5SDimitry Andric // Bypass back edges to avoid extra work.
9410b57cec5SDimitry Andric if (UseInst == CurrIV) continue;
9420b57cec5SDimitry Andric
9430b57cec5SDimitry Andric // Try to replace UseInst with a loop invariant before any other
9440b57cec5SDimitry Andric // simplifications.
9450b57cec5SDimitry Andric if (replaceIVUserWithLoopInvariant(UseInst))
9460b57cec5SDimitry Andric continue;
9470b57cec5SDimitry Andric
9485f757f3fSDimitry Andric // Go further for the bitcast 'prtoint ptr to i64' or if the cast is done
9495f757f3fSDimitry Andric // by truncation
9505f757f3fSDimitry Andric if ((isa<PtrToIntInst>(UseInst)) || (isa<TruncInst>(UseInst)))
95106c3fb27SDimitry Andric for (Use &U : UseInst->uses()) {
95206c3fb27SDimitry Andric Instruction *User = cast<Instruction>(U.getUser());
95306c3fb27SDimitry Andric if (replaceIVUserWithLoopInvariant(User))
95406c3fb27SDimitry Andric break; // done replacing
95506c3fb27SDimitry Andric }
95606c3fb27SDimitry Andric
9570b57cec5SDimitry Andric Instruction *IVOperand = UseOper.second;
9580b57cec5SDimitry Andric for (unsigned N = 0; IVOperand; ++N) {
9590b57cec5SDimitry Andric assert(N <= Simplified.size() && "runaway iteration");
96081ad6265SDimitry Andric (void) N;
9610b57cec5SDimitry Andric
9620b57cec5SDimitry Andric Value *NewOper = foldIVUser(UseInst, IVOperand);
9630b57cec5SDimitry Andric if (!NewOper)
9640b57cec5SDimitry Andric break; // done folding
9650b57cec5SDimitry Andric IVOperand = dyn_cast<Instruction>(NewOper);
9660b57cec5SDimitry Andric }
9670b57cec5SDimitry Andric if (!IVOperand)
9680b57cec5SDimitry Andric continue;
9690b57cec5SDimitry Andric
9700b57cec5SDimitry Andric if (eliminateIVUser(UseInst, IVOperand)) {
9710fca6ea1SDimitry Andric pushIVUsers(IVOperand, Simplified, SimpleIVUsers);
9720b57cec5SDimitry Andric continue;
9730b57cec5SDimitry Andric }
9740b57cec5SDimitry Andric
9750b57cec5SDimitry Andric if (BinaryOperator *BO = dyn_cast<BinaryOperator>(UseInst)) {
97606c3fb27SDimitry Andric if (strengthenBinaryOp(BO, IVOperand)) {
9770b57cec5SDimitry Andric // re-queue uses of the now modified binary operator and fall
9780b57cec5SDimitry Andric // through to the checks that remain.
9790fca6ea1SDimitry Andric pushIVUsers(IVOperand, Simplified, SimpleIVUsers);
9800b57cec5SDimitry Andric }
9810b57cec5SDimitry Andric }
9820b57cec5SDimitry Andric
983753f127fSDimitry Andric // Try to use integer induction for FPToSI of float induction directly.
984753f127fSDimitry Andric if (replaceFloatIVWithIntegerIV(UseInst)) {
985753f127fSDimitry Andric // Re-queue the potentially new direct uses of IVOperand.
9860fca6ea1SDimitry Andric pushIVUsers(IVOperand, Simplified, SimpleIVUsers);
987753f127fSDimitry Andric continue;
988753f127fSDimitry Andric }
989753f127fSDimitry Andric
9900b57cec5SDimitry Andric CastInst *Cast = dyn_cast<CastInst>(UseInst);
9910b57cec5SDimitry Andric if (V && Cast) {
9920b57cec5SDimitry Andric V->visitCast(Cast);
9930b57cec5SDimitry Andric continue;
9940b57cec5SDimitry Andric }
9950b57cec5SDimitry Andric if (isSimpleIVUser(UseInst, L, SE)) {
9960fca6ea1SDimitry Andric pushIVUsers(UseInst, Simplified, SimpleIVUsers);
9970b57cec5SDimitry Andric }
9980b57cec5SDimitry Andric }
9990b57cec5SDimitry Andric }
10000b57cec5SDimitry Andric
10010b57cec5SDimitry Andric namespace llvm {
10020b57cec5SDimitry Andric
anchor()10030b57cec5SDimitry Andric void IVVisitor::anchor() { }
10040b57cec5SDimitry Andric
10050b57cec5SDimitry Andric /// Simplify instructions that use this induction variable
10060b57cec5SDimitry Andric /// by using ScalarEvolution to analyze the IV's recurrence.
10070fca6ea1SDimitry Andric /// Returns a pair where the first entry indicates that the function makes
10080fca6ea1SDimitry Andric /// changes and the second entry indicates that it introduced new opportunities
10090fca6ea1SDimitry Andric /// for loop unswitching.
simplifyUsersOfIV(PHINode * CurrIV,ScalarEvolution * SE,DominatorTree * DT,LoopInfo * LI,const TargetTransformInfo * TTI,SmallVectorImpl<WeakTrackingVH> & Dead,SCEVExpander & Rewriter,IVVisitor * V)10100fca6ea1SDimitry Andric std::pair<bool, bool> simplifyUsersOfIV(PHINode *CurrIV, ScalarEvolution *SE,
10110fca6ea1SDimitry Andric DominatorTree *DT, LoopInfo *LI,
10120fca6ea1SDimitry Andric const TargetTransformInfo *TTI,
10135ffd83dbSDimitry Andric SmallVectorImpl<WeakTrackingVH> &Dead,
10140b57cec5SDimitry Andric SCEVExpander &Rewriter, IVVisitor *V) {
10155ffd83dbSDimitry Andric SimplifyIndvar SIV(LI->getLoopFor(CurrIV->getParent()), SE, DT, LI, TTI,
10165ffd83dbSDimitry Andric Rewriter, Dead);
10170b57cec5SDimitry Andric SIV.simplifyUsers(CurrIV, V);
10180fca6ea1SDimitry Andric return {SIV.hasChanged(), SIV.runUnswitching()};
10190b57cec5SDimitry Andric }
10200b57cec5SDimitry Andric
10210b57cec5SDimitry Andric /// Simplify users of induction variables within this
10220b57cec5SDimitry Andric /// loop. This does not actually change or add IVs.
simplifyLoopIVs(Loop * L,ScalarEvolution * SE,DominatorTree * DT,LoopInfo * LI,const TargetTransformInfo * TTI,SmallVectorImpl<WeakTrackingVH> & Dead)10230b57cec5SDimitry Andric bool simplifyLoopIVs(Loop *L, ScalarEvolution *SE, DominatorTree *DT,
10245ffd83dbSDimitry Andric LoopInfo *LI, const TargetTransformInfo *TTI,
10255ffd83dbSDimitry Andric SmallVectorImpl<WeakTrackingVH> &Dead) {
10260b57cec5SDimitry Andric SCEVExpander Rewriter(*SE, SE->getDataLayout(), "indvars");
10270b57cec5SDimitry Andric #ifndef NDEBUG
10280b57cec5SDimitry Andric Rewriter.setDebugType(DEBUG_TYPE);
10290b57cec5SDimitry Andric #endif
10300b57cec5SDimitry Andric bool Changed = false;
10310b57cec5SDimitry Andric for (BasicBlock::iterator I = L->getHeader()->begin(); isa<PHINode>(I); ++I) {
10320fca6ea1SDimitry Andric const auto &[C, _] =
10335ffd83dbSDimitry Andric simplifyUsersOfIV(cast<PHINode>(I), SE, DT, LI, TTI, Dead, Rewriter);
10340fca6ea1SDimitry Andric Changed |= C;
10350b57cec5SDimitry Andric }
10360b57cec5SDimitry Andric return Changed;
10370b57cec5SDimitry Andric }
10380b57cec5SDimitry Andric
10390b57cec5SDimitry Andric } // namespace llvm
1040e8d8bef9SDimitry Andric
1041349cc55cSDimitry Andric namespace {
1042e8d8bef9SDimitry Andric //===----------------------------------------------------------------------===//
1043e8d8bef9SDimitry Andric // Widen Induction Variables - Extend the width of an IV to cover its
1044e8d8bef9SDimitry Andric // widest uses.
1045e8d8bef9SDimitry Andric //===----------------------------------------------------------------------===//
1046e8d8bef9SDimitry Andric
1047e8d8bef9SDimitry Andric class WidenIV {
1048e8d8bef9SDimitry Andric // Parameters
1049e8d8bef9SDimitry Andric PHINode *OrigPhi;
1050e8d8bef9SDimitry Andric Type *WideType;
1051e8d8bef9SDimitry Andric
1052e8d8bef9SDimitry Andric // Context
1053e8d8bef9SDimitry Andric LoopInfo *LI;
1054e8d8bef9SDimitry Andric Loop *L;
1055e8d8bef9SDimitry Andric ScalarEvolution *SE;
1056e8d8bef9SDimitry Andric DominatorTree *DT;
1057e8d8bef9SDimitry Andric
1058e8d8bef9SDimitry Andric // Does the module have any calls to the llvm.experimental.guard intrinsic
1059e8d8bef9SDimitry Andric // at all? If not we can avoid scanning instructions looking for guards.
1060e8d8bef9SDimitry Andric bool HasGuards;
1061e8d8bef9SDimitry Andric
1062e8d8bef9SDimitry Andric bool UsePostIncrementRanges;
1063e8d8bef9SDimitry Andric
1064e8d8bef9SDimitry Andric // Statistics
1065e8d8bef9SDimitry Andric unsigned NumElimExt = 0;
1066e8d8bef9SDimitry Andric unsigned NumWidened = 0;
1067e8d8bef9SDimitry Andric
1068e8d8bef9SDimitry Andric // Result
1069e8d8bef9SDimitry Andric PHINode *WidePhi = nullptr;
1070e8d8bef9SDimitry Andric Instruction *WideInc = nullptr;
1071e8d8bef9SDimitry Andric const SCEV *WideIncExpr = nullptr;
1072e8d8bef9SDimitry Andric SmallVectorImpl<WeakTrackingVH> &DeadInsts;
1073e8d8bef9SDimitry Andric
1074e8d8bef9SDimitry Andric SmallPtrSet<Instruction *,16> Widened;
1075e8d8bef9SDimitry Andric
1076fcaf7f86SDimitry Andric enum class ExtendKind { Zero, Sign, Unknown };
1077e8d8bef9SDimitry Andric
1078e8d8bef9SDimitry Andric // A map tracking the kind of extension used to widen each narrow IV
1079e8d8bef9SDimitry Andric // and narrow IV user.
1080e8d8bef9SDimitry Andric // Key: pointer to a narrow IV or IV user.
1081e8d8bef9SDimitry Andric // Value: the kind of extension used to widen this Instruction.
1082e8d8bef9SDimitry Andric DenseMap<AssertingVH<Instruction>, ExtendKind> ExtendKindMap;
1083e8d8bef9SDimitry Andric
1084e8d8bef9SDimitry Andric using DefUserPair = std::pair<AssertingVH<Value>, AssertingVH<Instruction>>;
1085e8d8bef9SDimitry Andric
1086e8d8bef9SDimitry Andric // A map with control-dependent ranges for post increment IV uses. The key is
1087e8d8bef9SDimitry Andric // a pair of IV def and a use of this def denoting the context. The value is
1088e8d8bef9SDimitry Andric // a ConstantRange representing possible values of the def at the given
1089e8d8bef9SDimitry Andric // context.
1090e8d8bef9SDimitry Andric DenseMap<DefUserPair, ConstantRange> PostIncRangeInfos;
1091e8d8bef9SDimitry Andric
getPostIncRangeInfo(Value * Def,Instruction * UseI)1092bdd1243dSDimitry Andric std::optional<ConstantRange> getPostIncRangeInfo(Value *Def,
1093e8d8bef9SDimitry Andric Instruction *UseI) {
1094e8d8bef9SDimitry Andric DefUserPair Key(Def, UseI);
1095e8d8bef9SDimitry Andric auto It = PostIncRangeInfos.find(Key);
1096e8d8bef9SDimitry Andric return It == PostIncRangeInfos.end()
1097bdd1243dSDimitry Andric ? std::optional<ConstantRange>(std::nullopt)
1098bdd1243dSDimitry Andric : std::optional<ConstantRange>(It->second);
1099e8d8bef9SDimitry Andric }
1100e8d8bef9SDimitry Andric
1101e8d8bef9SDimitry Andric void calculatePostIncRanges(PHINode *OrigPhi);
1102e8d8bef9SDimitry Andric void calculatePostIncRange(Instruction *NarrowDef, Instruction *NarrowUser);
1103e8d8bef9SDimitry Andric
updatePostIncRangeInfo(Value * Def,Instruction * UseI,ConstantRange R)1104e8d8bef9SDimitry Andric void updatePostIncRangeInfo(Value *Def, Instruction *UseI, ConstantRange R) {
1105e8d8bef9SDimitry Andric DefUserPair Key(Def, UseI);
1106e8d8bef9SDimitry Andric auto It = PostIncRangeInfos.find(Key);
1107e8d8bef9SDimitry Andric if (It == PostIncRangeInfos.end())
1108e8d8bef9SDimitry Andric PostIncRangeInfos.insert({Key, R});
1109e8d8bef9SDimitry Andric else
1110e8d8bef9SDimitry Andric It->second = R.intersectWith(It->second);
1111e8d8bef9SDimitry Andric }
1112e8d8bef9SDimitry Andric
1113e8d8bef9SDimitry Andric public:
1114e8d8bef9SDimitry Andric /// Record a link in the Narrow IV def-use chain along with the WideIV that
1115e8d8bef9SDimitry Andric /// computes the same value as the Narrow IV def. This avoids caching Use*
1116e8d8bef9SDimitry Andric /// pointers.
1117e8d8bef9SDimitry Andric struct NarrowIVDefUse {
1118e8d8bef9SDimitry Andric Instruction *NarrowDef = nullptr;
1119e8d8bef9SDimitry Andric Instruction *NarrowUse = nullptr;
1120e8d8bef9SDimitry Andric Instruction *WideDef = nullptr;
1121e8d8bef9SDimitry Andric
1122e8d8bef9SDimitry Andric // True if the narrow def is never negative. Tracking this information lets
1123e8d8bef9SDimitry Andric // us use a sign extension instead of a zero extension or vice versa, when
1124e8d8bef9SDimitry Andric // profitable and legal.
1125e8d8bef9SDimitry Andric bool NeverNegative = false;
1126e8d8bef9SDimitry Andric
NarrowIVDefUse__anonb324fb7f0311::WidenIV::NarrowIVDefUse1127e8d8bef9SDimitry Andric NarrowIVDefUse(Instruction *ND, Instruction *NU, Instruction *WD,
1128e8d8bef9SDimitry Andric bool NeverNegative)
1129e8d8bef9SDimitry Andric : NarrowDef(ND), NarrowUse(NU), WideDef(WD),
1130e8d8bef9SDimitry Andric NeverNegative(NeverNegative) {}
1131e8d8bef9SDimitry Andric };
1132e8d8bef9SDimitry Andric
1133e8d8bef9SDimitry Andric WidenIV(const WideIVInfo &WI, LoopInfo *LInfo, ScalarEvolution *SEv,
1134e8d8bef9SDimitry Andric DominatorTree *DTree, SmallVectorImpl<WeakTrackingVH> &DI,
1135e8d8bef9SDimitry Andric bool HasGuards, bool UsePostIncrementRanges = true);
1136e8d8bef9SDimitry Andric
1137e8d8bef9SDimitry Andric PHINode *createWideIV(SCEVExpander &Rewriter);
1138e8d8bef9SDimitry Andric
getNumElimExt()1139e8d8bef9SDimitry Andric unsigned getNumElimExt() { return NumElimExt; };
getNumWidened()1140e8d8bef9SDimitry Andric unsigned getNumWidened() { return NumWidened; };
1141e8d8bef9SDimitry Andric
1142e8d8bef9SDimitry Andric protected:
1143e8d8bef9SDimitry Andric Value *createExtendInst(Value *NarrowOper, Type *WideType, bool IsSigned,
1144e8d8bef9SDimitry Andric Instruction *Use);
1145e8d8bef9SDimitry Andric
1146e8d8bef9SDimitry Andric Instruction *cloneIVUser(NarrowIVDefUse DU, const SCEVAddRecExpr *WideAR);
1147e8d8bef9SDimitry Andric Instruction *cloneArithmeticIVUser(NarrowIVDefUse DU,
1148e8d8bef9SDimitry Andric const SCEVAddRecExpr *WideAR);
1149e8d8bef9SDimitry Andric Instruction *cloneBitwiseIVUser(NarrowIVDefUse DU);
1150e8d8bef9SDimitry Andric
1151e8d8bef9SDimitry Andric ExtendKind getExtendKind(Instruction *I);
1152e8d8bef9SDimitry Andric
1153e8d8bef9SDimitry Andric using WidenedRecTy = std::pair<const SCEVAddRecExpr *, ExtendKind>;
1154e8d8bef9SDimitry Andric
1155e8d8bef9SDimitry Andric WidenedRecTy getWideRecurrence(NarrowIVDefUse DU);
1156e8d8bef9SDimitry Andric
1157e8d8bef9SDimitry Andric WidenedRecTy getExtendedOperandRecurrence(NarrowIVDefUse DU);
1158e8d8bef9SDimitry Andric
1159e8d8bef9SDimitry Andric const SCEV *getSCEVByOpCode(const SCEV *LHS, const SCEV *RHS,
1160e8d8bef9SDimitry Andric unsigned OpCode) const;
1161e8d8bef9SDimitry Andric
11620fca6ea1SDimitry Andric Instruction *widenIVUse(NarrowIVDefUse DU, SCEVExpander &Rewriter,
11630fca6ea1SDimitry Andric PHINode *OrigPhi, PHINode *WidePhi);
11640fca6ea1SDimitry Andric void truncateIVUse(NarrowIVDefUse DU);
1165e8d8bef9SDimitry Andric
1166e8d8bef9SDimitry Andric bool widenLoopCompare(NarrowIVDefUse DU);
1167e8d8bef9SDimitry Andric bool widenWithVariantUse(NarrowIVDefUse DU);
1168e8d8bef9SDimitry Andric
1169e8d8bef9SDimitry Andric void pushNarrowIVUsers(Instruction *NarrowDef, Instruction *WideDef);
1170e8d8bef9SDimitry Andric
1171e8d8bef9SDimitry Andric private:
1172e8d8bef9SDimitry Andric SmallVector<NarrowIVDefUse, 8> NarrowIVUsers;
1173e8d8bef9SDimitry Andric };
1174349cc55cSDimitry Andric } // namespace
1175e8d8bef9SDimitry Andric
1176e8d8bef9SDimitry Andric /// Determine the insertion point for this user. By default, insert immediately
1177e8d8bef9SDimitry Andric /// before the user. SCEVExpander or LICM will hoist loop invariants out of the
1178e8d8bef9SDimitry Andric /// loop. For PHI nodes, there may be multiple uses, so compute the nearest
1179e8d8bef9SDimitry Andric /// common dominator for the incoming blocks. A nullptr can be returned if no
1180e8d8bef9SDimitry Andric /// viable location is found: it may happen if User is a PHI and Def only comes
1181e8d8bef9SDimitry Andric /// to this PHI from unreachable blocks.
getInsertPointForUses(Instruction * User,Value * Def,DominatorTree * DT,LoopInfo * LI)1182e8d8bef9SDimitry Andric static Instruction *getInsertPointForUses(Instruction *User, Value *Def,
1183e8d8bef9SDimitry Andric DominatorTree *DT, LoopInfo *LI) {
1184e8d8bef9SDimitry Andric PHINode *PHI = dyn_cast<PHINode>(User);
1185e8d8bef9SDimitry Andric if (!PHI)
1186e8d8bef9SDimitry Andric return User;
1187e8d8bef9SDimitry Andric
1188e8d8bef9SDimitry Andric Instruction *InsertPt = nullptr;
1189e8d8bef9SDimitry Andric for (unsigned i = 0, e = PHI->getNumIncomingValues(); i != e; ++i) {
1190e8d8bef9SDimitry Andric if (PHI->getIncomingValue(i) != Def)
1191e8d8bef9SDimitry Andric continue;
1192e8d8bef9SDimitry Andric
1193e8d8bef9SDimitry Andric BasicBlock *InsertBB = PHI->getIncomingBlock(i);
1194e8d8bef9SDimitry Andric
1195e8d8bef9SDimitry Andric if (!DT->isReachableFromEntry(InsertBB))
1196e8d8bef9SDimitry Andric continue;
1197e8d8bef9SDimitry Andric
1198e8d8bef9SDimitry Andric if (!InsertPt) {
1199e8d8bef9SDimitry Andric InsertPt = InsertBB->getTerminator();
1200e8d8bef9SDimitry Andric continue;
1201e8d8bef9SDimitry Andric }
1202e8d8bef9SDimitry Andric InsertBB = DT->findNearestCommonDominator(InsertPt->getParent(), InsertBB);
1203e8d8bef9SDimitry Andric InsertPt = InsertBB->getTerminator();
1204e8d8bef9SDimitry Andric }
1205e8d8bef9SDimitry Andric
1206e8d8bef9SDimitry Andric // If we have skipped all inputs, it means that Def only comes to Phi from
1207e8d8bef9SDimitry Andric // unreachable blocks.
1208e8d8bef9SDimitry Andric if (!InsertPt)
1209e8d8bef9SDimitry Andric return nullptr;
1210e8d8bef9SDimitry Andric
1211e8d8bef9SDimitry Andric auto *DefI = dyn_cast<Instruction>(Def);
1212e8d8bef9SDimitry Andric if (!DefI)
1213e8d8bef9SDimitry Andric return InsertPt;
1214e8d8bef9SDimitry Andric
1215e8d8bef9SDimitry Andric assert(DT->dominates(DefI, InsertPt) && "def does not dominate all uses");
1216e8d8bef9SDimitry Andric
1217e8d8bef9SDimitry Andric auto *L = LI->getLoopFor(DefI->getParent());
1218e8d8bef9SDimitry Andric assert(!L || L->contains(LI->getLoopFor(InsertPt->getParent())));
1219e8d8bef9SDimitry Andric
1220e8d8bef9SDimitry Andric for (auto *DTN = (*DT)[InsertPt->getParent()]; DTN; DTN = DTN->getIDom())
1221e8d8bef9SDimitry Andric if (LI->getLoopFor(DTN->getBlock()) == L)
1222e8d8bef9SDimitry Andric return DTN->getBlock()->getTerminator();
1223e8d8bef9SDimitry Andric
1224e8d8bef9SDimitry Andric llvm_unreachable("DefI dominates InsertPt!");
1225e8d8bef9SDimitry Andric }
1226e8d8bef9SDimitry Andric
WidenIV(const WideIVInfo & WI,LoopInfo * LInfo,ScalarEvolution * SEv,DominatorTree * DTree,SmallVectorImpl<WeakTrackingVH> & DI,bool HasGuards,bool UsePostIncrementRanges)1227e8d8bef9SDimitry Andric WidenIV::WidenIV(const WideIVInfo &WI, LoopInfo *LInfo, ScalarEvolution *SEv,
1228e8d8bef9SDimitry Andric DominatorTree *DTree, SmallVectorImpl<WeakTrackingVH> &DI,
1229e8d8bef9SDimitry Andric bool HasGuards, bool UsePostIncrementRanges)
1230e8d8bef9SDimitry Andric : OrigPhi(WI.NarrowIV), WideType(WI.WidestNativeType), LI(LInfo),
1231e8d8bef9SDimitry Andric L(LI->getLoopFor(OrigPhi->getParent())), SE(SEv), DT(DTree),
1232e8d8bef9SDimitry Andric HasGuards(HasGuards), UsePostIncrementRanges(UsePostIncrementRanges),
1233e8d8bef9SDimitry Andric DeadInsts(DI) {
1234e8d8bef9SDimitry Andric assert(L->getHeader() == OrigPhi->getParent() && "Phi must be an IV");
1235fcaf7f86SDimitry Andric ExtendKindMap[OrigPhi] = WI.IsSigned ? ExtendKind::Sign : ExtendKind::Zero;
1236e8d8bef9SDimitry Andric }
1237e8d8bef9SDimitry Andric
createExtendInst(Value * NarrowOper,Type * WideType,bool IsSigned,Instruction * Use)1238e8d8bef9SDimitry Andric Value *WidenIV::createExtendInst(Value *NarrowOper, Type *WideType,
1239e8d8bef9SDimitry Andric bool IsSigned, Instruction *Use) {
1240e8d8bef9SDimitry Andric // Set the debug location and conservative insertion point.
1241e8d8bef9SDimitry Andric IRBuilder<> Builder(Use);
1242e8d8bef9SDimitry Andric // Hoist the insertion point into loop preheaders as far as possible.
1243e8d8bef9SDimitry Andric for (const Loop *L = LI->getLoopFor(Use->getParent());
1244e8d8bef9SDimitry Andric L && L->getLoopPreheader() && L->isLoopInvariant(NarrowOper);
1245e8d8bef9SDimitry Andric L = L->getParentLoop())
1246e8d8bef9SDimitry Andric Builder.SetInsertPoint(L->getLoopPreheader()->getTerminator());
1247e8d8bef9SDimitry Andric
1248e8d8bef9SDimitry Andric return IsSigned ? Builder.CreateSExt(NarrowOper, WideType) :
1249e8d8bef9SDimitry Andric Builder.CreateZExt(NarrowOper, WideType);
1250e8d8bef9SDimitry Andric }
1251e8d8bef9SDimitry Andric
1252e8d8bef9SDimitry Andric /// Instantiate a wide operation to replace a narrow operation. This only needs
1253e8d8bef9SDimitry Andric /// to handle operations that can evaluation to SCEVAddRec. It can safely return
1254e8d8bef9SDimitry Andric /// 0 for any operation we decide not to clone.
cloneIVUser(WidenIV::NarrowIVDefUse DU,const SCEVAddRecExpr * WideAR)1255e8d8bef9SDimitry Andric Instruction *WidenIV::cloneIVUser(WidenIV::NarrowIVDefUse DU,
1256e8d8bef9SDimitry Andric const SCEVAddRecExpr *WideAR) {
1257e8d8bef9SDimitry Andric unsigned Opcode = DU.NarrowUse->getOpcode();
1258e8d8bef9SDimitry Andric switch (Opcode) {
1259e8d8bef9SDimitry Andric default:
1260e8d8bef9SDimitry Andric return nullptr;
1261e8d8bef9SDimitry Andric case Instruction::Add:
1262e8d8bef9SDimitry Andric case Instruction::Mul:
1263e8d8bef9SDimitry Andric case Instruction::UDiv:
1264e8d8bef9SDimitry Andric case Instruction::Sub:
1265e8d8bef9SDimitry Andric return cloneArithmeticIVUser(DU, WideAR);
1266e8d8bef9SDimitry Andric
1267e8d8bef9SDimitry Andric case Instruction::And:
1268e8d8bef9SDimitry Andric case Instruction::Or:
1269e8d8bef9SDimitry Andric case Instruction::Xor:
1270e8d8bef9SDimitry Andric case Instruction::Shl:
1271e8d8bef9SDimitry Andric case Instruction::LShr:
1272e8d8bef9SDimitry Andric case Instruction::AShr:
1273e8d8bef9SDimitry Andric return cloneBitwiseIVUser(DU);
1274e8d8bef9SDimitry Andric }
1275e8d8bef9SDimitry Andric }
1276e8d8bef9SDimitry Andric
cloneBitwiseIVUser(WidenIV::NarrowIVDefUse DU)1277e8d8bef9SDimitry Andric Instruction *WidenIV::cloneBitwiseIVUser(WidenIV::NarrowIVDefUse DU) {
1278e8d8bef9SDimitry Andric Instruction *NarrowUse = DU.NarrowUse;
1279e8d8bef9SDimitry Andric Instruction *NarrowDef = DU.NarrowDef;
1280e8d8bef9SDimitry Andric Instruction *WideDef = DU.WideDef;
1281e8d8bef9SDimitry Andric
1282e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "Cloning bitwise IVUser: " << *NarrowUse << "\n");
1283e8d8bef9SDimitry Andric
1284e8d8bef9SDimitry Andric // Replace NarrowDef operands with WideDef. Otherwise, we don't know anything
1285e8d8bef9SDimitry Andric // about the narrow operand yet so must insert a [sz]ext. It is probably loop
1286e8d8bef9SDimitry Andric // invariant and will be folded or hoisted. If it actually comes from a
1287e8d8bef9SDimitry Andric // widened IV, it should be removed during a future call to widenIVUse.
1288fcaf7f86SDimitry Andric bool IsSigned = getExtendKind(NarrowDef) == ExtendKind::Sign;
1289e8d8bef9SDimitry Andric Value *LHS = (NarrowUse->getOperand(0) == NarrowDef)
1290e8d8bef9SDimitry Andric ? WideDef
1291e8d8bef9SDimitry Andric : createExtendInst(NarrowUse->getOperand(0), WideType,
1292e8d8bef9SDimitry Andric IsSigned, NarrowUse);
1293e8d8bef9SDimitry Andric Value *RHS = (NarrowUse->getOperand(1) == NarrowDef)
1294e8d8bef9SDimitry Andric ? WideDef
1295e8d8bef9SDimitry Andric : createExtendInst(NarrowUse->getOperand(1), WideType,
1296e8d8bef9SDimitry Andric IsSigned, NarrowUse);
1297e8d8bef9SDimitry Andric
1298e8d8bef9SDimitry Andric auto *NarrowBO = cast<BinaryOperator>(NarrowUse);
1299e8d8bef9SDimitry Andric auto *WideBO = BinaryOperator::Create(NarrowBO->getOpcode(), LHS, RHS,
1300e8d8bef9SDimitry Andric NarrowBO->getName());
1301e8d8bef9SDimitry Andric IRBuilder<> Builder(NarrowUse);
1302e8d8bef9SDimitry Andric Builder.Insert(WideBO);
1303e8d8bef9SDimitry Andric WideBO->copyIRFlags(NarrowBO);
1304e8d8bef9SDimitry Andric return WideBO;
1305e8d8bef9SDimitry Andric }
1306e8d8bef9SDimitry Andric
cloneArithmeticIVUser(WidenIV::NarrowIVDefUse DU,const SCEVAddRecExpr * WideAR)1307e8d8bef9SDimitry Andric Instruction *WidenIV::cloneArithmeticIVUser(WidenIV::NarrowIVDefUse DU,
1308e8d8bef9SDimitry Andric const SCEVAddRecExpr *WideAR) {
1309e8d8bef9SDimitry Andric Instruction *NarrowUse = DU.NarrowUse;
1310e8d8bef9SDimitry Andric Instruction *NarrowDef = DU.NarrowDef;
1311e8d8bef9SDimitry Andric Instruction *WideDef = DU.WideDef;
1312e8d8bef9SDimitry Andric
1313e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "Cloning arithmetic IVUser: " << *NarrowUse << "\n");
1314e8d8bef9SDimitry Andric
1315e8d8bef9SDimitry Andric unsigned IVOpIdx = (NarrowUse->getOperand(0) == NarrowDef) ? 0 : 1;
1316e8d8bef9SDimitry Andric
1317e8d8bef9SDimitry Andric // We're trying to find X such that
1318e8d8bef9SDimitry Andric //
1319e8d8bef9SDimitry Andric // Widen(NarrowDef `op` NonIVNarrowDef) == WideAR == WideDef `op.wide` X
1320e8d8bef9SDimitry Andric //
1321e8d8bef9SDimitry Andric // We guess two solutions to X, sext(NonIVNarrowDef) and zext(NonIVNarrowDef),
1322e8d8bef9SDimitry Andric // and check using SCEV if any of them are correct.
1323e8d8bef9SDimitry Andric
1324e8d8bef9SDimitry Andric // Returns true if extending NonIVNarrowDef according to `SignExt` is a
1325e8d8bef9SDimitry Andric // correct solution to X.
1326e8d8bef9SDimitry Andric auto GuessNonIVOperand = [&](bool SignExt) {
1327e8d8bef9SDimitry Andric const SCEV *WideLHS;
1328e8d8bef9SDimitry Andric const SCEV *WideRHS;
1329e8d8bef9SDimitry Andric
1330e8d8bef9SDimitry Andric auto GetExtend = [this, SignExt](const SCEV *S, Type *Ty) {
1331e8d8bef9SDimitry Andric if (SignExt)
1332e8d8bef9SDimitry Andric return SE->getSignExtendExpr(S, Ty);
1333e8d8bef9SDimitry Andric return SE->getZeroExtendExpr(S, Ty);
1334e8d8bef9SDimitry Andric };
1335e8d8bef9SDimitry Andric
1336e8d8bef9SDimitry Andric if (IVOpIdx == 0) {
1337e8d8bef9SDimitry Andric WideLHS = SE->getSCEV(WideDef);
1338e8d8bef9SDimitry Andric const SCEV *NarrowRHS = SE->getSCEV(NarrowUse->getOperand(1));
1339e8d8bef9SDimitry Andric WideRHS = GetExtend(NarrowRHS, WideType);
1340e8d8bef9SDimitry Andric } else {
1341e8d8bef9SDimitry Andric const SCEV *NarrowLHS = SE->getSCEV(NarrowUse->getOperand(0));
1342e8d8bef9SDimitry Andric WideLHS = GetExtend(NarrowLHS, WideType);
1343e8d8bef9SDimitry Andric WideRHS = SE->getSCEV(WideDef);
1344e8d8bef9SDimitry Andric }
1345e8d8bef9SDimitry Andric
1346e8d8bef9SDimitry Andric // WideUse is "WideDef `op.wide` X" as described in the comment.
1347e8d8bef9SDimitry Andric const SCEV *WideUse =
1348e8d8bef9SDimitry Andric getSCEVByOpCode(WideLHS, WideRHS, NarrowUse->getOpcode());
1349e8d8bef9SDimitry Andric
1350e8d8bef9SDimitry Andric return WideUse == WideAR;
1351e8d8bef9SDimitry Andric };
1352e8d8bef9SDimitry Andric
1353fcaf7f86SDimitry Andric bool SignExtend = getExtendKind(NarrowDef) == ExtendKind::Sign;
1354e8d8bef9SDimitry Andric if (!GuessNonIVOperand(SignExtend)) {
1355e8d8bef9SDimitry Andric SignExtend = !SignExtend;
1356e8d8bef9SDimitry Andric if (!GuessNonIVOperand(SignExtend))
1357e8d8bef9SDimitry Andric return nullptr;
1358e8d8bef9SDimitry Andric }
1359e8d8bef9SDimitry Andric
1360e8d8bef9SDimitry Andric Value *LHS = (NarrowUse->getOperand(0) == NarrowDef)
1361e8d8bef9SDimitry Andric ? WideDef
1362e8d8bef9SDimitry Andric : createExtendInst(NarrowUse->getOperand(0), WideType,
1363e8d8bef9SDimitry Andric SignExtend, NarrowUse);
1364e8d8bef9SDimitry Andric Value *RHS = (NarrowUse->getOperand(1) == NarrowDef)
1365e8d8bef9SDimitry Andric ? WideDef
1366e8d8bef9SDimitry Andric : createExtendInst(NarrowUse->getOperand(1), WideType,
1367e8d8bef9SDimitry Andric SignExtend, NarrowUse);
1368e8d8bef9SDimitry Andric
1369e8d8bef9SDimitry Andric auto *NarrowBO = cast<BinaryOperator>(NarrowUse);
1370e8d8bef9SDimitry Andric auto *WideBO = BinaryOperator::Create(NarrowBO->getOpcode(), LHS, RHS,
1371e8d8bef9SDimitry Andric NarrowBO->getName());
1372e8d8bef9SDimitry Andric
1373e8d8bef9SDimitry Andric IRBuilder<> Builder(NarrowUse);
1374e8d8bef9SDimitry Andric Builder.Insert(WideBO);
1375e8d8bef9SDimitry Andric WideBO->copyIRFlags(NarrowBO);
1376e8d8bef9SDimitry Andric return WideBO;
1377e8d8bef9SDimitry Andric }
1378e8d8bef9SDimitry Andric
getExtendKind(Instruction * I)1379e8d8bef9SDimitry Andric WidenIV::ExtendKind WidenIV::getExtendKind(Instruction *I) {
1380e8d8bef9SDimitry Andric auto It = ExtendKindMap.find(I);
1381e8d8bef9SDimitry Andric assert(It != ExtendKindMap.end() && "Instruction not yet extended!");
1382e8d8bef9SDimitry Andric return It->second;
1383e8d8bef9SDimitry Andric }
1384e8d8bef9SDimitry Andric
getSCEVByOpCode(const SCEV * LHS,const SCEV * RHS,unsigned OpCode) const1385e8d8bef9SDimitry Andric const SCEV *WidenIV::getSCEVByOpCode(const SCEV *LHS, const SCEV *RHS,
1386e8d8bef9SDimitry Andric unsigned OpCode) const {
1387e8d8bef9SDimitry Andric switch (OpCode) {
1388e8d8bef9SDimitry Andric case Instruction::Add:
1389e8d8bef9SDimitry Andric return SE->getAddExpr(LHS, RHS);
1390e8d8bef9SDimitry Andric case Instruction::Sub:
1391e8d8bef9SDimitry Andric return SE->getMinusSCEV(LHS, RHS);
1392e8d8bef9SDimitry Andric case Instruction::Mul:
1393e8d8bef9SDimitry Andric return SE->getMulExpr(LHS, RHS);
1394e8d8bef9SDimitry Andric case Instruction::UDiv:
1395e8d8bef9SDimitry Andric return SE->getUDivExpr(LHS, RHS);
1396e8d8bef9SDimitry Andric default:
1397e8d8bef9SDimitry Andric llvm_unreachable("Unsupported opcode.");
1398e8d8bef9SDimitry Andric };
1399e8d8bef9SDimitry Andric }
1400e8d8bef9SDimitry Andric
14010fca6ea1SDimitry Andric namespace {
14020fca6ea1SDimitry Andric
14030fca6ea1SDimitry Andric // Represents a interesting integer binary operation for
14040fca6ea1SDimitry Andric // getExtendedOperandRecurrence. This may be a shl that is being treated as a
14050fca6ea1SDimitry Andric // multiply or a 'or disjoint' that is being treated as 'add nsw nuw'.
14060fca6ea1SDimitry Andric struct BinaryOp {
14070fca6ea1SDimitry Andric unsigned Opcode;
14080fca6ea1SDimitry Andric std::array<Value *, 2> Operands;
14090fca6ea1SDimitry Andric bool IsNSW = false;
14100fca6ea1SDimitry Andric bool IsNUW = false;
14110fca6ea1SDimitry Andric
BinaryOp__anonb324fb7f0611::BinaryOp14120fca6ea1SDimitry Andric explicit BinaryOp(Instruction *Op)
14130fca6ea1SDimitry Andric : Opcode(Op->getOpcode()),
14140fca6ea1SDimitry Andric Operands({Op->getOperand(0), Op->getOperand(1)}) {
14150fca6ea1SDimitry Andric if (auto *OBO = dyn_cast<OverflowingBinaryOperator>(Op)) {
14160fca6ea1SDimitry Andric IsNSW = OBO->hasNoSignedWrap();
14170fca6ea1SDimitry Andric IsNUW = OBO->hasNoUnsignedWrap();
14180fca6ea1SDimitry Andric }
14190fca6ea1SDimitry Andric }
14200fca6ea1SDimitry Andric
BinaryOp__anonb324fb7f0611::BinaryOp14210fca6ea1SDimitry Andric explicit BinaryOp(Instruction::BinaryOps Opcode, Value *LHS, Value *RHS,
14220fca6ea1SDimitry Andric bool IsNSW = false, bool IsNUW = false)
14230fca6ea1SDimitry Andric : Opcode(Opcode), Operands({LHS, RHS}), IsNSW(IsNSW), IsNUW(IsNUW) {}
14240fca6ea1SDimitry Andric };
14250fca6ea1SDimitry Andric
14260fca6ea1SDimitry Andric } // end anonymous namespace
14270fca6ea1SDimitry Andric
matchBinaryOp(Instruction * Op)14280fca6ea1SDimitry Andric static std::optional<BinaryOp> matchBinaryOp(Instruction *Op) {
14290fca6ea1SDimitry Andric switch (Op->getOpcode()) {
14300fca6ea1SDimitry Andric case Instruction::Add:
14310fca6ea1SDimitry Andric case Instruction::Sub:
14320fca6ea1SDimitry Andric case Instruction::Mul:
14330fca6ea1SDimitry Andric return BinaryOp(Op);
14340fca6ea1SDimitry Andric case Instruction::Or: {
14350fca6ea1SDimitry Andric // Convert or disjoint into add nuw nsw.
14360fca6ea1SDimitry Andric if (cast<PossiblyDisjointInst>(Op)->isDisjoint())
14370fca6ea1SDimitry Andric return BinaryOp(Instruction::Add, Op->getOperand(0), Op->getOperand(1),
14380fca6ea1SDimitry Andric /*IsNSW=*/true, /*IsNUW=*/true);
14390fca6ea1SDimitry Andric break;
14400fca6ea1SDimitry Andric }
14410fca6ea1SDimitry Andric case Instruction::Shl: {
14420fca6ea1SDimitry Andric if (ConstantInt *SA = dyn_cast<ConstantInt>(Op->getOperand(1))) {
14430fca6ea1SDimitry Andric unsigned BitWidth = cast<IntegerType>(SA->getType())->getBitWidth();
14440fca6ea1SDimitry Andric
14450fca6ea1SDimitry Andric // If the shift count is not less than the bitwidth, the result of
14460fca6ea1SDimitry Andric // the shift is undefined. Don't try to analyze it, because the
14470fca6ea1SDimitry Andric // resolution chosen here may differ from the resolution chosen in
14480fca6ea1SDimitry Andric // other parts of the compiler.
14490fca6ea1SDimitry Andric if (SA->getValue().ult(BitWidth)) {
14500fca6ea1SDimitry Andric // We can safely preserve the nuw flag in all cases. It's also safe to
14510fca6ea1SDimitry Andric // turn a nuw nsw shl into a nuw nsw mul. However, nsw in isolation
14520fca6ea1SDimitry Andric // requires special handling. It can be preserved as long as we're not
14530fca6ea1SDimitry Andric // left shifting by bitwidth - 1.
14540fca6ea1SDimitry Andric bool IsNUW = Op->hasNoUnsignedWrap();
14550fca6ea1SDimitry Andric bool IsNSW = Op->hasNoSignedWrap() &&
14560fca6ea1SDimitry Andric (IsNUW || SA->getValue().ult(BitWidth - 1));
14570fca6ea1SDimitry Andric
14580fca6ea1SDimitry Andric ConstantInt *X =
14590fca6ea1SDimitry Andric ConstantInt::get(Op->getContext(),
14600fca6ea1SDimitry Andric APInt::getOneBitSet(BitWidth, SA->getZExtValue()));
14610fca6ea1SDimitry Andric return BinaryOp(Instruction::Mul, Op->getOperand(0), X, IsNSW, IsNUW);
14620fca6ea1SDimitry Andric }
14630fca6ea1SDimitry Andric }
14640fca6ea1SDimitry Andric
14650fca6ea1SDimitry Andric break;
14660fca6ea1SDimitry Andric }
14670fca6ea1SDimitry Andric }
14680fca6ea1SDimitry Andric
14690fca6ea1SDimitry Andric return std::nullopt;
14700fca6ea1SDimitry Andric }
14710fca6ea1SDimitry Andric
1472e8d8bef9SDimitry Andric /// No-wrap operations can transfer sign extension of their result to their
1473e8d8bef9SDimitry Andric /// operands. Generate the SCEV value for the widened operation without
1474e8d8bef9SDimitry Andric /// actually modifying the IR yet. If the expression after extending the
1475e8d8bef9SDimitry Andric /// operands is an AddRec for this loop, return the AddRec and the kind of
1476e8d8bef9SDimitry Andric /// extension used.
1477e8d8bef9SDimitry Andric WidenIV::WidenedRecTy
getExtendedOperandRecurrence(WidenIV::NarrowIVDefUse DU)1478e8d8bef9SDimitry Andric WidenIV::getExtendedOperandRecurrence(WidenIV::NarrowIVDefUse DU) {
14790fca6ea1SDimitry Andric auto Op = matchBinaryOp(DU.NarrowUse);
14800fca6ea1SDimitry Andric if (!Op)
1481fcaf7f86SDimitry Andric return {nullptr, ExtendKind::Unknown};
1482e8d8bef9SDimitry Andric
14830fca6ea1SDimitry Andric assert((Op->Opcode == Instruction::Add || Op->Opcode == Instruction::Sub ||
14840fca6ea1SDimitry Andric Op->Opcode == Instruction::Mul) &&
14850fca6ea1SDimitry Andric "Unexpected opcode");
14860fca6ea1SDimitry Andric
1487e8d8bef9SDimitry Andric // One operand (NarrowDef) has already been extended to WideDef. Now determine
1488e8d8bef9SDimitry Andric // if extending the other will lead to a recurrence.
14890fca6ea1SDimitry Andric const unsigned ExtendOperIdx = Op->Operands[0] == DU.NarrowDef ? 1 : 0;
14900fca6ea1SDimitry Andric assert(Op->Operands[1 - ExtendOperIdx] == DU.NarrowDef && "bad DU");
1491e8d8bef9SDimitry Andric
1492e8d8bef9SDimitry Andric ExtendKind ExtKind = getExtendKind(DU.NarrowDef);
14930fca6ea1SDimitry Andric if (!(ExtKind == ExtendKind::Sign && Op->IsNSW) &&
14940fca6ea1SDimitry Andric !(ExtKind == ExtendKind::Zero && Op->IsNUW)) {
14955f757f3fSDimitry Andric ExtKind = ExtendKind::Unknown;
14965f757f3fSDimitry Andric
14975f757f3fSDimitry Andric // For a non-negative NarrowDef, we can choose either type of
14985f757f3fSDimitry Andric // extension. We want to use the current extend kind if legal
14995f757f3fSDimitry Andric // (see above), and we only hit this code if we need to check
15005f757f3fSDimitry Andric // the opposite case.
15015f757f3fSDimitry Andric if (DU.NeverNegative) {
15020fca6ea1SDimitry Andric if (Op->IsNSW) {
15035f757f3fSDimitry Andric ExtKind = ExtendKind::Sign;
15040fca6ea1SDimitry Andric } else if (Op->IsNUW) {
15055f757f3fSDimitry Andric ExtKind = ExtendKind::Zero;
15065f757f3fSDimitry Andric }
15075f757f3fSDimitry Andric }
15085f757f3fSDimitry Andric }
15095f757f3fSDimitry Andric
15100fca6ea1SDimitry Andric const SCEV *ExtendOperExpr = SE->getSCEV(Op->Operands[ExtendOperIdx]);
15115f757f3fSDimitry Andric if (ExtKind == ExtendKind::Sign)
15125f757f3fSDimitry Andric ExtendOperExpr = SE->getSignExtendExpr(ExtendOperExpr, WideType);
15135f757f3fSDimitry Andric else if (ExtKind == ExtendKind::Zero)
15145f757f3fSDimitry Andric ExtendOperExpr = SE->getZeroExtendExpr(ExtendOperExpr, WideType);
1515e8d8bef9SDimitry Andric else
1516fcaf7f86SDimitry Andric return {nullptr, ExtendKind::Unknown};
1517e8d8bef9SDimitry Andric
1518e8d8bef9SDimitry Andric // When creating this SCEV expr, don't apply the current operations NSW or NUW
1519e8d8bef9SDimitry Andric // flags. This instruction may be guarded by control flow that the no-wrap
1520e8d8bef9SDimitry Andric // behavior depends on. Non-control-equivalent instructions can be mapped to
1521e8d8bef9SDimitry Andric // the same SCEV expression, and it would be incorrect to transfer NSW/NUW
1522e8d8bef9SDimitry Andric // semantics to those operations.
1523e8d8bef9SDimitry Andric const SCEV *lhs = SE->getSCEV(DU.WideDef);
1524e8d8bef9SDimitry Andric const SCEV *rhs = ExtendOperExpr;
1525e8d8bef9SDimitry Andric
1526e8d8bef9SDimitry Andric // Let's swap operands to the initial order for the case of non-commutative
1527e8d8bef9SDimitry Andric // operations, like SUB. See PR21014.
1528e8d8bef9SDimitry Andric if (ExtendOperIdx == 0)
1529e8d8bef9SDimitry Andric std::swap(lhs, rhs);
1530e8d8bef9SDimitry Andric const SCEVAddRecExpr *AddRec =
15310fca6ea1SDimitry Andric dyn_cast<SCEVAddRecExpr>(getSCEVByOpCode(lhs, rhs, Op->Opcode));
1532e8d8bef9SDimitry Andric
1533e8d8bef9SDimitry Andric if (!AddRec || AddRec->getLoop() != L)
1534fcaf7f86SDimitry Andric return {nullptr, ExtendKind::Unknown};
1535e8d8bef9SDimitry Andric
1536e8d8bef9SDimitry Andric return {AddRec, ExtKind};
1537e8d8bef9SDimitry Andric }
1538e8d8bef9SDimitry Andric
1539e8d8bef9SDimitry Andric /// Is this instruction potentially interesting for further simplification after
1540e8d8bef9SDimitry Andric /// widening it's type? In other words, can the extend be safely hoisted out of
1541e8d8bef9SDimitry Andric /// the loop with SCEV reducing the value to a recurrence on the same loop. If
1542e8d8bef9SDimitry Andric /// so, return the extended recurrence and the kind of extension used. Otherwise
1543fcaf7f86SDimitry Andric /// return {nullptr, ExtendKind::Unknown}.
getWideRecurrence(WidenIV::NarrowIVDefUse DU)1544e8d8bef9SDimitry Andric WidenIV::WidenedRecTy WidenIV::getWideRecurrence(WidenIV::NarrowIVDefUse DU) {
1545fe6060f1SDimitry Andric if (!DU.NarrowUse->getType()->isIntegerTy())
1546fcaf7f86SDimitry Andric return {nullptr, ExtendKind::Unknown};
1547e8d8bef9SDimitry Andric
1548e8d8bef9SDimitry Andric const SCEV *NarrowExpr = SE->getSCEV(DU.NarrowUse);
1549e8d8bef9SDimitry Andric if (SE->getTypeSizeInBits(NarrowExpr->getType()) >=
1550e8d8bef9SDimitry Andric SE->getTypeSizeInBits(WideType)) {
1551e8d8bef9SDimitry Andric // NarrowUse implicitly widens its operand. e.g. a gep with a narrow
1552e8d8bef9SDimitry Andric // index. So don't follow this use.
1553fcaf7f86SDimitry Andric return {nullptr, ExtendKind::Unknown};
1554e8d8bef9SDimitry Andric }
1555e8d8bef9SDimitry Andric
1556e8d8bef9SDimitry Andric const SCEV *WideExpr;
1557e8d8bef9SDimitry Andric ExtendKind ExtKind;
1558e8d8bef9SDimitry Andric if (DU.NeverNegative) {
1559e8d8bef9SDimitry Andric WideExpr = SE->getSignExtendExpr(NarrowExpr, WideType);
1560e8d8bef9SDimitry Andric if (isa<SCEVAddRecExpr>(WideExpr))
1561fcaf7f86SDimitry Andric ExtKind = ExtendKind::Sign;
1562e8d8bef9SDimitry Andric else {
1563e8d8bef9SDimitry Andric WideExpr = SE->getZeroExtendExpr(NarrowExpr, WideType);
1564fcaf7f86SDimitry Andric ExtKind = ExtendKind::Zero;
1565e8d8bef9SDimitry Andric }
1566fcaf7f86SDimitry Andric } else if (getExtendKind(DU.NarrowDef) == ExtendKind::Sign) {
1567e8d8bef9SDimitry Andric WideExpr = SE->getSignExtendExpr(NarrowExpr, WideType);
1568fcaf7f86SDimitry Andric ExtKind = ExtendKind::Sign;
1569e8d8bef9SDimitry Andric } else {
1570e8d8bef9SDimitry Andric WideExpr = SE->getZeroExtendExpr(NarrowExpr, WideType);
1571fcaf7f86SDimitry Andric ExtKind = ExtendKind::Zero;
1572e8d8bef9SDimitry Andric }
1573e8d8bef9SDimitry Andric const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(WideExpr);
1574e8d8bef9SDimitry Andric if (!AddRec || AddRec->getLoop() != L)
1575fcaf7f86SDimitry Andric return {nullptr, ExtendKind::Unknown};
1576e8d8bef9SDimitry Andric return {AddRec, ExtKind};
1577e8d8bef9SDimitry Andric }
1578e8d8bef9SDimitry Andric
1579e8d8bef9SDimitry Andric /// This IV user cannot be widened. Replace this use of the original narrow IV
1580e8d8bef9SDimitry Andric /// with a truncation of the new wide IV to isolate and eliminate the narrow IV.
truncateIVUse(NarrowIVDefUse DU)15810fca6ea1SDimitry Andric void WidenIV::truncateIVUse(NarrowIVDefUse DU) {
1582e8d8bef9SDimitry Andric auto *InsertPt = getInsertPointForUses(DU.NarrowUse, DU.NarrowDef, DT, LI);
1583e8d8bef9SDimitry Andric if (!InsertPt)
1584e8d8bef9SDimitry Andric return;
1585e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Truncate IV " << *DU.WideDef << " for user "
1586e8d8bef9SDimitry Andric << *DU.NarrowUse << "\n");
15870fca6ea1SDimitry Andric ExtendKind ExtKind = getExtendKind(DU.NarrowDef);
1588e8d8bef9SDimitry Andric IRBuilder<> Builder(InsertPt);
15890fca6ea1SDimitry Andric Value *Trunc =
15900fca6ea1SDimitry Andric Builder.CreateTrunc(DU.WideDef, DU.NarrowDef->getType(), "",
15910fca6ea1SDimitry Andric DU.NeverNegative || ExtKind == ExtendKind::Zero,
15920fca6ea1SDimitry Andric DU.NeverNegative || ExtKind == ExtendKind::Sign);
1593e8d8bef9SDimitry Andric DU.NarrowUse->replaceUsesOfWith(DU.NarrowDef, Trunc);
1594e8d8bef9SDimitry Andric }
1595e8d8bef9SDimitry Andric
1596e8d8bef9SDimitry Andric /// If the narrow use is a compare instruction, then widen the compare
1597e8d8bef9SDimitry Andric // (and possibly the other operand). The extend operation is hoisted into the
1598e8d8bef9SDimitry Andric // loop preheader as far as possible.
widenLoopCompare(WidenIV::NarrowIVDefUse DU)1599e8d8bef9SDimitry Andric bool WidenIV::widenLoopCompare(WidenIV::NarrowIVDefUse DU) {
1600e8d8bef9SDimitry Andric ICmpInst *Cmp = dyn_cast<ICmpInst>(DU.NarrowUse);
1601e8d8bef9SDimitry Andric if (!Cmp)
1602e8d8bef9SDimitry Andric return false;
1603e8d8bef9SDimitry Andric
1604e8d8bef9SDimitry Andric // We can legally widen the comparison in the following two cases:
1605e8d8bef9SDimitry Andric //
1606e8d8bef9SDimitry Andric // - The signedness of the IV extension and comparison match
1607e8d8bef9SDimitry Andric //
1608e8d8bef9SDimitry Andric // - The narrow IV is always positive (and thus its sign extension is equal
1609e8d8bef9SDimitry Andric // to its zero extension). For instance, let's say we're zero extending
1610e8d8bef9SDimitry Andric // %narrow for the following use
1611e8d8bef9SDimitry Andric //
1612e8d8bef9SDimitry Andric // icmp slt i32 %narrow, %val ... (A)
1613e8d8bef9SDimitry Andric //
1614e8d8bef9SDimitry Andric // and %narrow is always positive. Then
1615e8d8bef9SDimitry Andric //
1616e8d8bef9SDimitry Andric // (A) == icmp slt i32 sext(%narrow), sext(%val)
1617e8d8bef9SDimitry Andric // == icmp slt i32 zext(%narrow), sext(%val)
1618fcaf7f86SDimitry Andric bool IsSigned = getExtendKind(DU.NarrowDef) == ExtendKind::Sign;
1619e8d8bef9SDimitry Andric if (!(DU.NeverNegative || IsSigned == Cmp->isSigned()))
1620e8d8bef9SDimitry Andric return false;
1621e8d8bef9SDimitry Andric
1622e8d8bef9SDimitry Andric Value *Op = Cmp->getOperand(Cmp->getOperand(0) == DU.NarrowDef ? 1 : 0);
1623e8d8bef9SDimitry Andric unsigned CastWidth = SE->getTypeSizeInBits(Op->getType());
1624e8d8bef9SDimitry Andric unsigned IVWidth = SE->getTypeSizeInBits(WideType);
1625e8d8bef9SDimitry Andric assert(CastWidth <= IVWidth && "Unexpected width while widening compare.");
1626e8d8bef9SDimitry Andric
1627e8d8bef9SDimitry Andric // Widen the compare instruction.
1628e8d8bef9SDimitry Andric DU.NarrowUse->replaceUsesOfWith(DU.NarrowDef, DU.WideDef);
1629e8d8bef9SDimitry Andric
1630e8d8bef9SDimitry Andric // Widen the other operand of the compare, if necessary.
1631e8d8bef9SDimitry Andric if (CastWidth < IVWidth) {
1632e8d8bef9SDimitry Andric Value *ExtOp = createExtendInst(Op, WideType, Cmp->isSigned(), Cmp);
1633e8d8bef9SDimitry Andric DU.NarrowUse->replaceUsesOfWith(Op, ExtOp);
1634e8d8bef9SDimitry Andric }
1635e8d8bef9SDimitry Andric return true;
1636e8d8bef9SDimitry Andric }
1637e8d8bef9SDimitry Andric
1638e8d8bef9SDimitry Andric // The widenIVUse avoids generating trunc by evaluating the use as AddRec, this
1639e8d8bef9SDimitry Andric // will not work when:
1640e8d8bef9SDimitry Andric // 1) SCEV traces back to an instruction inside the loop that SCEV can not
1641e8d8bef9SDimitry Andric // expand, eg. add %indvar, (load %addr)
1642e8d8bef9SDimitry Andric // 2) SCEV finds a loop variant, eg. add %indvar, %loopvariant
1643e8d8bef9SDimitry Andric // While SCEV fails to avoid trunc, we can still try to use instruction
1644e8d8bef9SDimitry Andric // combining approach to prove trunc is not required. This can be further
1645e8d8bef9SDimitry Andric // extended with other instruction combining checks, but for now we handle the
1646e8d8bef9SDimitry Andric // following case (sub can be "add" and "mul", "nsw + sext" can be "nus + zext")
1647e8d8bef9SDimitry Andric //
1648e8d8bef9SDimitry Andric // Src:
1649e8d8bef9SDimitry Andric // %c = sub nsw %b, %indvar
1650e8d8bef9SDimitry Andric // %d = sext %c to i64
1651e8d8bef9SDimitry Andric // Dst:
1652e8d8bef9SDimitry Andric // %indvar.ext1 = sext %indvar to i64
1653e8d8bef9SDimitry Andric // %m = sext %b to i64
1654e8d8bef9SDimitry Andric // %d = sub nsw i64 %m, %indvar.ext1
1655e8d8bef9SDimitry Andric // Therefore, as long as the result of add/sub/mul is extended to wide type, no
1656e8d8bef9SDimitry Andric // trunc is required regardless of how %b is generated. This pattern is common
1657e8d8bef9SDimitry Andric // when calculating address in 64 bit architecture
widenWithVariantUse(WidenIV::NarrowIVDefUse DU)1658e8d8bef9SDimitry Andric bool WidenIV::widenWithVariantUse(WidenIV::NarrowIVDefUse DU) {
1659e8d8bef9SDimitry Andric Instruction *NarrowUse = DU.NarrowUse;
1660e8d8bef9SDimitry Andric Instruction *NarrowDef = DU.NarrowDef;
1661e8d8bef9SDimitry Andric Instruction *WideDef = DU.WideDef;
1662e8d8bef9SDimitry Andric
1663e8d8bef9SDimitry Andric // Handle the common case of add<nsw/nuw>
1664e8d8bef9SDimitry Andric const unsigned OpCode = NarrowUse->getOpcode();
1665e8d8bef9SDimitry Andric // Only Add/Sub/Mul instructions are supported.
1666e8d8bef9SDimitry Andric if (OpCode != Instruction::Add && OpCode != Instruction::Sub &&
1667e8d8bef9SDimitry Andric OpCode != Instruction::Mul)
1668e8d8bef9SDimitry Andric return false;
1669e8d8bef9SDimitry Andric
1670e8d8bef9SDimitry Andric // The operand that is not defined by NarrowDef of DU. Let's call it the
1671e8d8bef9SDimitry Andric // other operand.
1672e8d8bef9SDimitry Andric assert((NarrowUse->getOperand(0) == NarrowDef ||
1673e8d8bef9SDimitry Andric NarrowUse->getOperand(1) == NarrowDef) &&
1674e8d8bef9SDimitry Andric "bad DU");
1675e8d8bef9SDimitry Andric
1676e8d8bef9SDimitry Andric const OverflowingBinaryOperator *OBO =
1677e8d8bef9SDimitry Andric cast<OverflowingBinaryOperator>(NarrowUse);
1678e8d8bef9SDimitry Andric ExtendKind ExtKind = getExtendKind(NarrowDef);
1679fcaf7f86SDimitry Andric bool CanSignExtend = ExtKind == ExtendKind::Sign && OBO->hasNoSignedWrap();
1680fcaf7f86SDimitry Andric bool CanZeroExtend = ExtKind == ExtendKind::Zero && OBO->hasNoUnsignedWrap();
1681e8d8bef9SDimitry Andric auto AnotherOpExtKind = ExtKind;
1682e8d8bef9SDimitry Andric
1683e8d8bef9SDimitry Andric // Check that all uses are either:
1684e8d8bef9SDimitry Andric // - narrow def (in case of we are widening the IV increment);
1685e8d8bef9SDimitry Andric // - single-input LCSSA Phis;
1686e8d8bef9SDimitry Andric // - comparison of the chosen type;
1687e8d8bef9SDimitry Andric // - extend of the chosen type (raison d'etre).
1688e8d8bef9SDimitry Andric SmallVector<Instruction *, 4> ExtUsers;
1689e8d8bef9SDimitry Andric SmallVector<PHINode *, 4> LCSSAPhiUsers;
1690e8d8bef9SDimitry Andric SmallVector<ICmpInst *, 4> ICmpUsers;
1691e8d8bef9SDimitry Andric for (Use &U : NarrowUse->uses()) {
1692e8d8bef9SDimitry Andric Instruction *User = cast<Instruction>(U.getUser());
1693e8d8bef9SDimitry Andric if (User == NarrowDef)
1694e8d8bef9SDimitry Andric continue;
1695e8d8bef9SDimitry Andric if (!L->contains(User)) {
1696e8d8bef9SDimitry Andric auto *LCSSAPhi = cast<PHINode>(User);
1697e8d8bef9SDimitry Andric // Make sure there is only 1 input, so that we don't have to split
1698e8d8bef9SDimitry Andric // critical edges.
1699e8d8bef9SDimitry Andric if (LCSSAPhi->getNumOperands() != 1)
1700e8d8bef9SDimitry Andric return false;
1701e8d8bef9SDimitry Andric LCSSAPhiUsers.push_back(LCSSAPhi);
1702e8d8bef9SDimitry Andric continue;
1703e8d8bef9SDimitry Andric }
1704e8d8bef9SDimitry Andric if (auto *ICmp = dyn_cast<ICmpInst>(User)) {
1705e8d8bef9SDimitry Andric auto Pred = ICmp->getPredicate();
1706e8d8bef9SDimitry Andric // We have 3 types of predicates: signed, unsigned and equality
1707e8d8bef9SDimitry Andric // predicates. For equality, it's legal to widen icmp for either sign and
1708e8d8bef9SDimitry Andric // zero extend. For sign extend, we can also do so for signed predicates,
1709e8d8bef9SDimitry Andric // likeweise for zero extend we can widen icmp for unsigned predicates.
1710fcaf7f86SDimitry Andric if (ExtKind == ExtendKind::Zero && ICmpInst::isSigned(Pred))
1711e8d8bef9SDimitry Andric return false;
1712fcaf7f86SDimitry Andric if (ExtKind == ExtendKind::Sign && ICmpInst::isUnsigned(Pred))
1713e8d8bef9SDimitry Andric return false;
1714e8d8bef9SDimitry Andric ICmpUsers.push_back(ICmp);
1715e8d8bef9SDimitry Andric continue;
1716e8d8bef9SDimitry Andric }
1717fcaf7f86SDimitry Andric if (ExtKind == ExtendKind::Sign)
1718e8d8bef9SDimitry Andric User = dyn_cast<SExtInst>(User);
1719e8d8bef9SDimitry Andric else
1720e8d8bef9SDimitry Andric User = dyn_cast<ZExtInst>(User);
1721e8d8bef9SDimitry Andric if (!User || User->getType() != WideType)
1722e8d8bef9SDimitry Andric return false;
1723e8d8bef9SDimitry Andric ExtUsers.push_back(User);
1724e8d8bef9SDimitry Andric }
1725e8d8bef9SDimitry Andric if (ExtUsers.empty()) {
1726e8d8bef9SDimitry Andric DeadInsts.emplace_back(NarrowUse);
1727e8d8bef9SDimitry Andric return true;
1728e8d8bef9SDimitry Andric }
1729e8d8bef9SDimitry Andric
1730e8d8bef9SDimitry Andric // We'll prove some facts that should be true in the context of ext users. If
1731e8d8bef9SDimitry Andric // there is no users, we are done now. If there are some, pick their common
1732e8d8bef9SDimitry Andric // dominator as context.
1733fe6060f1SDimitry Andric const Instruction *CtxI = findCommonDominator(ExtUsers, *DT);
1734e8d8bef9SDimitry Andric
1735e8d8bef9SDimitry Andric if (!CanSignExtend && !CanZeroExtend) {
1736e8d8bef9SDimitry Andric // Because InstCombine turns 'sub nuw' to 'add' losing the no-wrap flag, we
1737e8d8bef9SDimitry Andric // will most likely not see it. Let's try to prove it.
1738e8d8bef9SDimitry Andric if (OpCode != Instruction::Add)
1739e8d8bef9SDimitry Andric return false;
1740fcaf7f86SDimitry Andric if (ExtKind != ExtendKind::Zero)
1741e8d8bef9SDimitry Andric return false;
1742e8d8bef9SDimitry Andric const SCEV *LHS = SE->getSCEV(OBO->getOperand(0));
1743e8d8bef9SDimitry Andric const SCEV *RHS = SE->getSCEV(OBO->getOperand(1));
1744e8d8bef9SDimitry Andric // TODO: Support case for NarrowDef = NarrowUse->getOperand(1).
1745e8d8bef9SDimitry Andric if (NarrowUse->getOperand(0) != NarrowDef)
1746e8d8bef9SDimitry Andric return false;
1747e8d8bef9SDimitry Andric if (!SE->isKnownNegative(RHS))
1748e8d8bef9SDimitry Andric return false;
1749fe6060f1SDimitry Andric bool ProvedSubNUW = SE->isKnownPredicateAt(ICmpInst::ICMP_UGE, LHS,
1750fe6060f1SDimitry Andric SE->getNegativeSCEV(RHS), CtxI);
1751e8d8bef9SDimitry Andric if (!ProvedSubNUW)
1752e8d8bef9SDimitry Andric return false;
1753e8d8bef9SDimitry Andric // In fact, our 'add' is 'sub nuw'. We will need to widen the 2nd operand as
1754e8d8bef9SDimitry Andric // neg(zext(neg(op))), which is basically sext(op).
1755fcaf7f86SDimitry Andric AnotherOpExtKind = ExtendKind::Sign;
1756e8d8bef9SDimitry Andric }
1757e8d8bef9SDimitry Andric
1758e8d8bef9SDimitry Andric // Verifying that Defining operand is an AddRec
1759e8d8bef9SDimitry Andric const SCEV *Op1 = SE->getSCEV(WideDef);
1760e8d8bef9SDimitry Andric const SCEVAddRecExpr *AddRecOp1 = dyn_cast<SCEVAddRecExpr>(Op1);
1761e8d8bef9SDimitry Andric if (!AddRecOp1 || AddRecOp1->getLoop() != L)
1762e8d8bef9SDimitry Andric return false;
1763e8d8bef9SDimitry Andric
1764e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "Cloning arithmetic IVUser: " << *NarrowUse << "\n");
1765e8d8bef9SDimitry Andric
1766e8d8bef9SDimitry Andric // Generating a widening use instruction.
1767fcaf7f86SDimitry Andric Value *LHS =
1768fcaf7f86SDimitry Andric (NarrowUse->getOperand(0) == NarrowDef)
1769e8d8bef9SDimitry Andric ? WideDef
1770e8d8bef9SDimitry Andric : createExtendInst(NarrowUse->getOperand(0), WideType,
1771fcaf7f86SDimitry Andric AnotherOpExtKind == ExtendKind::Sign, NarrowUse);
1772fcaf7f86SDimitry Andric Value *RHS =
1773fcaf7f86SDimitry Andric (NarrowUse->getOperand(1) == NarrowDef)
1774e8d8bef9SDimitry Andric ? WideDef
1775e8d8bef9SDimitry Andric : createExtendInst(NarrowUse->getOperand(1), WideType,
1776fcaf7f86SDimitry Andric AnotherOpExtKind == ExtendKind::Sign, NarrowUse);
1777e8d8bef9SDimitry Andric
1778e8d8bef9SDimitry Andric auto *NarrowBO = cast<BinaryOperator>(NarrowUse);
1779e8d8bef9SDimitry Andric auto *WideBO = BinaryOperator::Create(NarrowBO->getOpcode(), LHS, RHS,
1780e8d8bef9SDimitry Andric NarrowBO->getName());
1781e8d8bef9SDimitry Andric IRBuilder<> Builder(NarrowUse);
1782e8d8bef9SDimitry Andric Builder.Insert(WideBO);
1783e8d8bef9SDimitry Andric WideBO->copyIRFlags(NarrowBO);
1784e8d8bef9SDimitry Andric ExtendKindMap[NarrowUse] = ExtKind;
1785e8d8bef9SDimitry Andric
1786e8d8bef9SDimitry Andric for (Instruction *User : ExtUsers) {
1787e8d8bef9SDimitry Andric assert(User->getType() == WideType && "Checked before!");
1788e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: eliminating " << *User << " replaced by "
1789e8d8bef9SDimitry Andric << *WideBO << "\n");
1790e8d8bef9SDimitry Andric ++NumElimExt;
1791e8d8bef9SDimitry Andric User->replaceAllUsesWith(WideBO);
1792e8d8bef9SDimitry Andric DeadInsts.emplace_back(User);
1793e8d8bef9SDimitry Andric }
1794e8d8bef9SDimitry Andric
1795e8d8bef9SDimitry Andric for (PHINode *User : LCSSAPhiUsers) {
1796e8d8bef9SDimitry Andric assert(User->getNumOperands() == 1 && "Checked before!");
1797e8d8bef9SDimitry Andric Builder.SetInsertPoint(User);
1798e8d8bef9SDimitry Andric auto *WidePN =
1799e8d8bef9SDimitry Andric Builder.CreatePHI(WideBO->getType(), 1, User->getName() + ".wide");
1800e8d8bef9SDimitry Andric BasicBlock *LoopExitingBlock = User->getParent()->getSinglePredecessor();
1801e8d8bef9SDimitry Andric assert(LoopExitingBlock && L->contains(LoopExitingBlock) &&
1802e8d8bef9SDimitry Andric "Not a LCSSA Phi?");
1803e8d8bef9SDimitry Andric WidePN->addIncoming(WideBO, LoopExitingBlock);
18045f757f3fSDimitry Andric Builder.SetInsertPoint(User->getParent(),
18055f757f3fSDimitry Andric User->getParent()->getFirstInsertionPt());
1806e8d8bef9SDimitry Andric auto *TruncPN = Builder.CreateTrunc(WidePN, User->getType());
1807e8d8bef9SDimitry Andric User->replaceAllUsesWith(TruncPN);
1808e8d8bef9SDimitry Andric DeadInsts.emplace_back(User);
1809e8d8bef9SDimitry Andric }
1810e8d8bef9SDimitry Andric
1811e8d8bef9SDimitry Andric for (ICmpInst *User : ICmpUsers) {
1812e8d8bef9SDimitry Andric Builder.SetInsertPoint(User);
1813e8d8bef9SDimitry Andric auto ExtendedOp = [&](Value * V)->Value * {
1814e8d8bef9SDimitry Andric if (V == NarrowUse)
1815e8d8bef9SDimitry Andric return WideBO;
1816fcaf7f86SDimitry Andric if (ExtKind == ExtendKind::Zero)
1817e8d8bef9SDimitry Andric return Builder.CreateZExt(V, WideBO->getType());
1818e8d8bef9SDimitry Andric else
1819e8d8bef9SDimitry Andric return Builder.CreateSExt(V, WideBO->getType());
1820e8d8bef9SDimitry Andric };
1821e8d8bef9SDimitry Andric auto Pred = User->getPredicate();
1822e8d8bef9SDimitry Andric auto *LHS = ExtendedOp(User->getOperand(0));
1823e8d8bef9SDimitry Andric auto *RHS = ExtendedOp(User->getOperand(1));
1824e8d8bef9SDimitry Andric auto *WideCmp =
1825e8d8bef9SDimitry Andric Builder.CreateICmp(Pred, LHS, RHS, User->getName() + ".wide");
1826e8d8bef9SDimitry Andric User->replaceAllUsesWith(WideCmp);
1827e8d8bef9SDimitry Andric DeadInsts.emplace_back(User);
1828e8d8bef9SDimitry Andric }
1829e8d8bef9SDimitry Andric
1830e8d8bef9SDimitry Andric return true;
1831e8d8bef9SDimitry Andric }
1832e8d8bef9SDimitry Andric
1833e8d8bef9SDimitry Andric /// Determine whether an individual user of the narrow IV can be widened. If so,
1834e8d8bef9SDimitry Andric /// return the wide clone of the user.
widenIVUse(WidenIV::NarrowIVDefUse DU,SCEVExpander & Rewriter,PHINode * OrigPhi,PHINode * WidePhi)18350fca6ea1SDimitry Andric Instruction *WidenIV::widenIVUse(WidenIV::NarrowIVDefUse DU,
18360fca6ea1SDimitry Andric SCEVExpander &Rewriter, PHINode *OrigPhi,
18370fca6ea1SDimitry Andric PHINode *WidePhi) {
1838e8d8bef9SDimitry Andric assert(ExtendKindMap.count(DU.NarrowDef) &&
1839e8d8bef9SDimitry Andric "Should already know the kind of extension used to widen NarrowDef");
1840e8d8bef9SDimitry Andric
18410fca6ea1SDimitry Andric // This narrow use can be widened by a sext if it's non-negative or its narrow
18420fca6ea1SDimitry Andric // def was widened by a sext. Same for zext.
18430fca6ea1SDimitry Andric bool CanWidenBySExt =
18440fca6ea1SDimitry Andric DU.NeverNegative || getExtendKind(DU.NarrowDef) == ExtendKind::Sign;
18450fca6ea1SDimitry Andric bool CanWidenByZExt =
18460fca6ea1SDimitry Andric DU.NeverNegative || getExtendKind(DU.NarrowDef) == ExtendKind::Zero;
18470fca6ea1SDimitry Andric
1848e8d8bef9SDimitry Andric // Stop traversing the def-use chain at inner-loop phis or post-loop phis.
1849e8d8bef9SDimitry Andric if (PHINode *UsePhi = dyn_cast<PHINode>(DU.NarrowUse)) {
1850e8d8bef9SDimitry Andric if (LI->getLoopFor(UsePhi->getParent()) != L) {
1851e8d8bef9SDimitry Andric // For LCSSA phis, sink the truncate outside the loop.
1852e8d8bef9SDimitry Andric // After SimplifyCFG most loop exit targets have a single predecessor.
1853e8d8bef9SDimitry Andric // Otherwise fall back to a truncate within the loop.
1854e8d8bef9SDimitry Andric if (UsePhi->getNumOperands() != 1)
18550fca6ea1SDimitry Andric truncateIVUse(DU);
1856e8d8bef9SDimitry Andric else {
1857e8d8bef9SDimitry Andric // Widening the PHI requires us to insert a trunc. The logical place
1858e8d8bef9SDimitry Andric // for this trunc is in the same BB as the PHI. This is not possible if
1859e8d8bef9SDimitry Andric // the BB is terminated by a catchswitch.
1860e8d8bef9SDimitry Andric if (isa<CatchSwitchInst>(UsePhi->getParent()->getTerminator()))
1861e8d8bef9SDimitry Andric return nullptr;
1862e8d8bef9SDimitry Andric
1863e8d8bef9SDimitry Andric PHINode *WidePhi =
1864e8d8bef9SDimitry Andric PHINode::Create(DU.WideDef->getType(), 1, UsePhi->getName() + ".wide",
18650fca6ea1SDimitry Andric UsePhi->getIterator());
1866e8d8bef9SDimitry Andric WidePhi->addIncoming(DU.WideDef, UsePhi->getIncomingBlock(0));
18675f757f3fSDimitry Andric BasicBlock *WidePhiBB = WidePhi->getParent();
18685f757f3fSDimitry Andric IRBuilder<> Builder(WidePhiBB, WidePhiBB->getFirstInsertionPt());
18690fca6ea1SDimitry Andric Value *Trunc = Builder.CreateTrunc(WidePhi, DU.NarrowDef->getType(), "",
18700fca6ea1SDimitry Andric CanWidenByZExt, CanWidenBySExt);
1871e8d8bef9SDimitry Andric UsePhi->replaceAllUsesWith(Trunc);
1872e8d8bef9SDimitry Andric DeadInsts.emplace_back(UsePhi);
1873e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: Widen lcssa phi " << *UsePhi << " to "
1874e8d8bef9SDimitry Andric << *WidePhi << "\n");
1875e8d8bef9SDimitry Andric }
1876e8d8bef9SDimitry Andric return nullptr;
1877e8d8bef9SDimitry Andric }
1878e8d8bef9SDimitry Andric }
1879e8d8bef9SDimitry Andric
1880e8d8bef9SDimitry Andric // Our raison d'etre! Eliminate sign and zero extension.
18810fca6ea1SDimitry Andric if ((match(DU.NarrowUse, m_SExtLike(m_Value())) && CanWidenBySExt) ||
18820fca6ea1SDimitry Andric (isa<ZExtInst>(DU.NarrowUse) && CanWidenByZExt)) {
1883e8d8bef9SDimitry Andric Value *NewDef = DU.WideDef;
1884e8d8bef9SDimitry Andric if (DU.NarrowUse->getType() != WideType) {
1885e8d8bef9SDimitry Andric unsigned CastWidth = SE->getTypeSizeInBits(DU.NarrowUse->getType());
1886e8d8bef9SDimitry Andric unsigned IVWidth = SE->getTypeSizeInBits(WideType);
1887e8d8bef9SDimitry Andric if (CastWidth < IVWidth) {
1888e8d8bef9SDimitry Andric // The cast isn't as wide as the IV, so insert a Trunc.
1889e8d8bef9SDimitry Andric IRBuilder<> Builder(DU.NarrowUse);
18900fca6ea1SDimitry Andric NewDef = Builder.CreateTrunc(DU.WideDef, DU.NarrowUse->getType(), "",
18910fca6ea1SDimitry Andric CanWidenByZExt, CanWidenBySExt);
1892e8d8bef9SDimitry Andric }
1893e8d8bef9SDimitry Andric else {
1894e8d8bef9SDimitry Andric // A wider extend was hidden behind a narrower one. This may induce
1895e8d8bef9SDimitry Andric // another round of IV widening in which the intermediate IV becomes
1896e8d8bef9SDimitry Andric // dead. It should be very rare.
1897e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: New IV " << *WidePhi
1898e8d8bef9SDimitry Andric << " not wide enough to subsume " << *DU.NarrowUse
1899e8d8bef9SDimitry Andric << "\n");
1900e8d8bef9SDimitry Andric DU.NarrowUse->replaceUsesOfWith(DU.NarrowDef, DU.WideDef);
1901e8d8bef9SDimitry Andric NewDef = DU.NarrowUse;
1902e8d8bef9SDimitry Andric }
1903e8d8bef9SDimitry Andric }
1904e8d8bef9SDimitry Andric if (NewDef != DU.NarrowUse) {
1905e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "INDVARS: eliminating " << *DU.NarrowUse
1906e8d8bef9SDimitry Andric << " replaced by " << *DU.WideDef << "\n");
1907e8d8bef9SDimitry Andric ++NumElimExt;
1908e8d8bef9SDimitry Andric DU.NarrowUse->replaceAllUsesWith(NewDef);
1909e8d8bef9SDimitry Andric DeadInsts.emplace_back(DU.NarrowUse);
1910e8d8bef9SDimitry Andric }
1911e8d8bef9SDimitry Andric // Now that the extend is gone, we want to expose it's uses for potential
1912e8d8bef9SDimitry Andric // further simplification. We don't need to directly inform SimplifyIVUsers
1913e8d8bef9SDimitry Andric // of the new users, because their parent IV will be processed later as a
1914e8d8bef9SDimitry Andric // new loop phi. If we preserved IVUsers analysis, we would also want to
1915e8d8bef9SDimitry Andric // push the uses of WideDef here.
1916e8d8bef9SDimitry Andric
1917e8d8bef9SDimitry Andric // No further widening is needed. The deceased [sz]ext had done it for us.
1918e8d8bef9SDimitry Andric return nullptr;
1919e8d8bef9SDimitry Andric }
1920e8d8bef9SDimitry Andric
19215f757f3fSDimitry Andric auto tryAddRecExpansion = [&]() -> Instruction* {
1922e8d8bef9SDimitry Andric // Does this user itself evaluate to a recurrence after widening?
1923e8d8bef9SDimitry Andric WidenedRecTy WideAddRec = getExtendedOperandRecurrence(DU);
1924e8d8bef9SDimitry Andric if (!WideAddRec.first)
1925e8d8bef9SDimitry Andric WideAddRec = getWideRecurrence(DU);
1926fcaf7f86SDimitry Andric assert((WideAddRec.first == nullptr) ==
1927fcaf7f86SDimitry Andric (WideAddRec.second == ExtendKind::Unknown));
19285f757f3fSDimitry Andric if (!WideAddRec.first)
1929e8d8bef9SDimitry Andric return nullptr;
1930e8d8bef9SDimitry Andric
1931*6c4b055cSDimitry Andric auto CanUseWideInc = [&]() {
1932*6c4b055cSDimitry Andric if (!WideInc)
1933*6c4b055cSDimitry Andric return false;
1934*6c4b055cSDimitry Andric // Reuse the IV increment that SCEVExpander created. Recompute flags,
1935*6c4b055cSDimitry Andric // unless the flags for both increments agree and it is safe to use the
1936*6c4b055cSDimitry Andric // ones from the original inc. In that case, the new use of the wide
1937*6c4b055cSDimitry Andric // increment won't be more poisonous.
19380fca6ea1SDimitry Andric bool NeedToRecomputeFlags =
1939*6c4b055cSDimitry Andric !SCEVExpander::canReuseFlagsFromOriginalIVInc(
1940*6c4b055cSDimitry Andric OrigPhi, WidePhi, DU.NarrowUse, WideInc) ||
19410fca6ea1SDimitry Andric DU.NarrowUse->hasNoUnsignedWrap() != WideInc->hasNoUnsignedWrap() ||
19420fca6ea1SDimitry Andric DU.NarrowUse->hasNoSignedWrap() != WideInc->hasNoSignedWrap();
1943*6c4b055cSDimitry Andric return WideAddRec.first == WideIncExpr &&
1944*6c4b055cSDimitry Andric Rewriter.hoistIVInc(WideInc, DU.NarrowUse, NeedToRecomputeFlags);
1945*6c4b055cSDimitry Andric };
1946*6c4b055cSDimitry Andric
1947e8d8bef9SDimitry Andric Instruction *WideUse = nullptr;
1948*6c4b055cSDimitry Andric if (CanUseWideInc())
1949e8d8bef9SDimitry Andric WideUse = WideInc;
1950e8d8bef9SDimitry Andric else {
1951e8d8bef9SDimitry Andric WideUse = cloneIVUser(DU, WideAddRec.first);
1952e8d8bef9SDimitry Andric if (!WideUse)
1953e8d8bef9SDimitry Andric return nullptr;
1954e8d8bef9SDimitry Andric }
1955e8d8bef9SDimitry Andric // Evaluation of WideAddRec ensured that the narrow expression could be
1956e8d8bef9SDimitry Andric // extended outside the loop without overflow. This suggests that the wide use
1957e8d8bef9SDimitry Andric // evaluates to the same expression as the extended narrow use, but doesn't
1958e8d8bef9SDimitry Andric // absolutely guarantee it. Hence the following failsafe check. In rare cases
1959e8d8bef9SDimitry Andric // where it fails, we simply throw away the newly created wide use.
1960e8d8bef9SDimitry Andric if (WideAddRec.first != SE->getSCEV(WideUse)) {
1961e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "Wide use expression mismatch: " << *WideUse << ": "
1962e8d8bef9SDimitry Andric << *SE->getSCEV(WideUse) << " != " << *WideAddRec.first
1963e8d8bef9SDimitry Andric << "\n");
1964e8d8bef9SDimitry Andric DeadInsts.emplace_back(WideUse);
1965e8d8bef9SDimitry Andric return nullptr;
19665f757f3fSDimitry Andric };
1967e8d8bef9SDimitry Andric
1968e8d8bef9SDimitry Andric // if we reached this point then we are going to replace
1969e8d8bef9SDimitry Andric // DU.NarrowUse with WideUse. Reattach DbgValue then.
1970e8d8bef9SDimitry Andric replaceAllDbgUsesWith(*DU.NarrowUse, *WideUse, *WideUse, *DT);
1971e8d8bef9SDimitry Andric
1972e8d8bef9SDimitry Andric ExtendKindMap[DU.NarrowUse] = WideAddRec.second;
1973e8d8bef9SDimitry Andric // Returning WideUse pushes it on the worklist.
1974e8d8bef9SDimitry Andric return WideUse;
19755f757f3fSDimitry Andric };
19765f757f3fSDimitry Andric
19775f757f3fSDimitry Andric if (auto *I = tryAddRecExpansion())
19785f757f3fSDimitry Andric return I;
19795f757f3fSDimitry Andric
19805f757f3fSDimitry Andric // If use is a loop condition, try to promote the condition instead of
19815f757f3fSDimitry Andric // truncating the IV first.
19825f757f3fSDimitry Andric if (widenLoopCompare(DU))
19835f757f3fSDimitry Andric return nullptr;
19845f757f3fSDimitry Andric
19855f757f3fSDimitry Andric // We are here about to generate a truncate instruction that may hurt
19865f757f3fSDimitry Andric // performance because the scalar evolution expression computed earlier
19875f757f3fSDimitry Andric // in WideAddRec.first does not indicate a polynomial induction expression.
19885f757f3fSDimitry Andric // In that case, look at the operands of the use instruction to determine
19895f757f3fSDimitry Andric // if we can still widen the use instead of truncating its operand.
19905f757f3fSDimitry Andric if (widenWithVariantUse(DU))
19915f757f3fSDimitry Andric return nullptr;
19925f757f3fSDimitry Andric
19935f757f3fSDimitry Andric // This user does not evaluate to a recurrence after widening, so don't
19945f757f3fSDimitry Andric // follow it. Instead insert a Trunc to kill off the original use,
19955f757f3fSDimitry Andric // eventually isolating the original narrow IV so it can be removed.
19960fca6ea1SDimitry Andric truncateIVUse(DU);
19975f757f3fSDimitry Andric return nullptr;
1998e8d8bef9SDimitry Andric }
1999e8d8bef9SDimitry Andric
2000e8d8bef9SDimitry Andric /// Add eligible users of NarrowDef to NarrowIVUsers.
pushNarrowIVUsers(Instruction * NarrowDef,Instruction * WideDef)2001e8d8bef9SDimitry Andric void WidenIV::pushNarrowIVUsers(Instruction *NarrowDef, Instruction *WideDef) {
2002e8d8bef9SDimitry Andric const SCEV *NarrowSCEV = SE->getSCEV(NarrowDef);
2003e8d8bef9SDimitry Andric bool NonNegativeDef =
2004e8d8bef9SDimitry Andric SE->isKnownPredicate(ICmpInst::ICMP_SGE, NarrowSCEV,
2005e8d8bef9SDimitry Andric SE->getZero(NarrowSCEV->getType()));
2006e8d8bef9SDimitry Andric for (User *U : NarrowDef->users()) {
2007e8d8bef9SDimitry Andric Instruction *NarrowUser = cast<Instruction>(U);
2008e8d8bef9SDimitry Andric
2009e8d8bef9SDimitry Andric // Handle data flow merges and bizarre phi cycles.
2010e8d8bef9SDimitry Andric if (!Widened.insert(NarrowUser).second)
2011e8d8bef9SDimitry Andric continue;
2012e8d8bef9SDimitry Andric
2013e8d8bef9SDimitry Andric bool NonNegativeUse = false;
2014e8d8bef9SDimitry Andric if (!NonNegativeDef) {
2015e8d8bef9SDimitry Andric // We might have a control-dependent range information for this context.
2016e8d8bef9SDimitry Andric if (auto RangeInfo = getPostIncRangeInfo(NarrowDef, NarrowUser))
2017e8d8bef9SDimitry Andric NonNegativeUse = RangeInfo->getSignedMin().isNonNegative();
2018e8d8bef9SDimitry Andric }
2019e8d8bef9SDimitry Andric
2020e8d8bef9SDimitry Andric NarrowIVUsers.emplace_back(NarrowDef, NarrowUser, WideDef,
2021e8d8bef9SDimitry Andric NonNegativeDef || NonNegativeUse);
2022e8d8bef9SDimitry Andric }
2023e8d8bef9SDimitry Andric }
2024e8d8bef9SDimitry Andric
2025e8d8bef9SDimitry Andric /// Process a single induction variable. First use the SCEVExpander to create a
2026e8d8bef9SDimitry Andric /// wide induction variable that evaluates to the same recurrence as the
2027e8d8bef9SDimitry Andric /// original narrow IV. Then use a worklist to forward traverse the narrow IV's
2028e8d8bef9SDimitry Andric /// def-use chain. After widenIVUse has processed all interesting IV users, the
2029e8d8bef9SDimitry Andric /// narrow IV will be isolated for removal by DeleteDeadPHIs.
2030e8d8bef9SDimitry Andric ///
2031e8d8bef9SDimitry Andric /// It would be simpler to delete uses as they are processed, but we must avoid
2032e8d8bef9SDimitry Andric /// invalidating SCEV expressions.
createWideIV(SCEVExpander & Rewriter)2033e8d8bef9SDimitry Andric PHINode *WidenIV::createWideIV(SCEVExpander &Rewriter) {
2034e8d8bef9SDimitry Andric // Is this phi an induction variable?
2035e8d8bef9SDimitry Andric const SCEVAddRecExpr *AddRec = dyn_cast<SCEVAddRecExpr>(SE->getSCEV(OrigPhi));
2036e8d8bef9SDimitry Andric if (!AddRec)
2037e8d8bef9SDimitry Andric return nullptr;
2038e8d8bef9SDimitry Andric
2039e8d8bef9SDimitry Andric // Widen the induction variable expression.
2040fcaf7f86SDimitry Andric const SCEV *WideIVExpr = getExtendKind(OrigPhi) == ExtendKind::Sign
2041e8d8bef9SDimitry Andric ? SE->getSignExtendExpr(AddRec, WideType)
2042e8d8bef9SDimitry Andric : SE->getZeroExtendExpr(AddRec, WideType);
2043e8d8bef9SDimitry Andric
2044e8d8bef9SDimitry Andric assert(SE->getEffectiveSCEVType(WideIVExpr->getType()) == WideType &&
2045e8d8bef9SDimitry Andric "Expect the new IV expression to preserve its type");
2046e8d8bef9SDimitry Andric
2047e8d8bef9SDimitry Andric // Can the IV be extended outside the loop without overflow?
2048e8d8bef9SDimitry Andric AddRec = dyn_cast<SCEVAddRecExpr>(WideIVExpr);
2049e8d8bef9SDimitry Andric if (!AddRec || AddRec->getLoop() != L)
2050e8d8bef9SDimitry Andric return nullptr;
2051e8d8bef9SDimitry Andric
2052e8d8bef9SDimitry Andric // An AddRec must have loop-invariant operands. Since this AddRec is
2053e8d8bef9SDimitry Andric // materialized by a loop header phi, the expression cannot have any post-loop
2054e8d8bef9SDimitry Andric // operands, so they must dominate the loop header.
2055e8d8bef9SDimitry Andric assert(
2056e8d8bef9SDimitry Andric SE->properlyDominates(AddRec->getStart(), L->getHeader()) &&
2057e8d8bef9SDimitry Andric SE->properlyDominates(AddRec->getStepRecurrence(*SE), L->getHeader()) &&
2058e8d8bef9SDimitry Andric "Loop header phi recurrence inputs do not dominate the loop");
2059e8d8bef9SDimitry Andric
2060e8d8bef9SDimitry Andric // Iterate over IV uses (including transitive ones) looking for IV increments
2061e8d8bef9SDimitry Andric // of the form 'add nsw %iv, <const>'. For each increment and each use of
2062e8d8bef9SDimitry Andric // the increment calculate control-dependent range information basing on
2063e8d8bef9SDimitry Andric // dominating conditions inside of the loop (e.g. a range check inside of the
2064e8d8bef9SDimitry Andric // loop). Calculated ranges are stored in PostIncRangeInfos map.
2065e8d8bef9SDimitry Andric //
2066e8d8bef9SDimitry Andric // Control-dependent range information is later used to prove that a narrow
2067e8d8bef9SDimitry Andric // definition is not negative (see pushNarrowIVUsers). It's difficult to do
2068e8d8bef9SDimitry Andric // this on demand because when pushNarrowIVUsers needs this information some
2069e8d8bef9SDimitry Andric // of the dominating conditions might be already widened.
2070e8d8bef9SDimitry Andric if (UsePostIncrementRanges)
2071e8d8bef9SDimitry Andric calculatePostIncRanges(OrigPhi);
2072e8d8bef9SDimitry Andric
2073e8d8bef9SDimitry Andric // The rewriter provides a value for the desired IV expression. This may
2074e8d8bef9SDimitry Andric // either find an existing phi or materialize a new one. Either way, we
2075e8d8bef9SDimitry Andric // expect a well-formed cyclic phi-with-increments. i.e. any operand not part
2076e8d8bef9SDimitry Andric // of the phi-SCC dominates the loop entry.
2077e8d8bef9SDimitry Andric Instruction *InsertPt = &*L->getHeader()->getFirstInsertionPt();
2078e8d8bef9SDimitry Andric Value *ExpandInst = Rewriter.expandCodeFor(AddRec, WideType, InsertPt);
2079e8d8bef9SDimitry Andric // If the wide phi is not a phi node, for example a cast node, like bitcast,
2080e8d8bef9SDimitry Andric // inttoptr, ptrtoint, just skip for now.
2081e8d8bef9SDimitry Andric if (!(WidePhi = dyn_cast<PHINode>(ExpandInst))) {
2082e8d8bef9SDimitry Andric // if the cast node is an inserted instruction without any user, we should
2083e8d8bef9SDimitry Andric // remove it to make sure the pass don't touch the function as we can not
2084e8d8bef9SDimitry Andric // wide the phi.
2085e8d8bef9SDimitry Andric if (ExpandInst->hasNUses(0) &&
2086e8d8bef9SDimitry Andric Rewriter.isInsertedInstruction(cast<Instruction>(ExpandInst)))
2087e8d8bef9SDimitry Andric DeadInsts.emplace_back(ExpandInst);
2088e8d8bef9SDimitry Andric return nullptr;
2089e8d8bef9SDimitry Andric }
2090e8d8bef9SDimitry Andric
2091e8d8bef9SDimitry Andric // Remembering the WideIV increment generated by SCEVExpander allows
2092e8d8bef9SDimitry Andric // widenIVUse to reuse it when widening the narrow IV's increment. We don't
2093e8d8bef9SDimitry Andric // employ a general reuse mechanism because the call above is the only call to
2094e8d8bef9SDimitry Andric // SCEVExpander. Henceforth, we produce 1-to-1 narrow to wide uses.
2095e8d8bef9SDimitry Andric if (BasicBlock *LatchBlock = L->getLoopLatch()) {
2096e8d8bef9SDimitry Andric WideInc =
20975f757f3fSDimitry Andric dyn_cast<Instruction>(WidePhi->getIncomingValueForBlock(LatchBlock));
20985f757f3fSDimitry Andric if (WideInc) {
2099e8d8bef9SDimitry Andric WideIncExpr = SE->getSCEV(WideInc);
21005f757f3fSDimitry Andric // Propagate the debug location associated with the original loop
21015f757f3fSDimitry Andric // increment to the new (widened) increment.
2102e8d8bef9SDimitry Andric auto *OrigInc =
2103e8d8bef9SDimitry Andric cast<Instruction>(OrigPhi->getIncomingValueForBlock(LatchBlock));
21040fca6ea1SDimitry Andric
2105e8d8bef9SDimitry Andric WideInc->setDebugLoc(OrigInc->getDebugLoc());
21060fca6ea1SDimitry Andric // We are replacing a narrow IV increment with a wider IV increment. If
21070fca6ea1SDimitry Andric // the original (narrow) increment did not wrap, the wider increment one
21080fca6ea1SDimitry Andric // should not wrap either. Set the flags to be the union of both wide
21090fca6ea1SDimitry Andric // increment and original increment; this ensures we preserve flags SCEV
21100fca6ea1SDimitry Andric // could infer for the wider increment. Limit this only to cases where
21110fca6ea1SDimitry Andric // both increments directly increment the corresponding PHI nodes and have
21120fca6ea1SDimitry Andric // the same opcode. It is not safe to re-use the flags from the original
21130fca6ea1SDimitry Andric // increment, if it is more complex and SCEV expansion may have yielded a
21140fca6ea1SDimitry Andric // more simplified wider increment.
21150fca6ea1SDimitry Andric if (SCEVExpander::canReuseFlagsFromOriginalIVInc(OrigPhi, WidePhi,
21160fca6ea1SDimitry Andric OrigInc, WideInc) &&
21170fca6ea1SDimitry Andric isa<OverflowingBinaryOperator>(OrigInc) &&
21180fca6ea1SDimitry Andric isa<OverflowingBinaryOperator>(WideInc)) {
21190fca6ea1SDimitry Andric WideInc->setHasNoUnsignedWrap(WideInc->hasNoUnsignedWrap() ||
21200fca6ea1SDimitry Andric OrigInc->hasNoUnsignedWrap());
21210fca6ea1SDimitry Andric WideInc->setHasNoSignedWrap(WideInc->hasNoSignedWrap() ||
21220fca6ea1SDimitry Andric OrigInc->hasNoSignedWrap());
21230fca6ea1SDimitry Andric }
2124e8d8bef9SDimitry Andric }
21255f757f3fSDimitry Andric }
2126e8d8bef9SDimitry Andric
2127e8d8bef9SDimitry Andric LLVM_DEBUG(dbgs() << "Wide IV: " << *WidePhi << "\n");
2128e8d8bef9SDimitry Andric ++NumWidened;
2129e8d8bef9SDimitry Andric
2130e8d8bef9SDimitry Andric // Traverse the def-use chain using a worklist starting at the original IV.
2131e8d8bef9SDimitry Andric assert(Widened.empty() && NarrowIVUsers.empty() && "expect initial state" );
2132e8d8bef9SDimitry Andric
2133e8d8bef9SDimitry Andric Widened.insert(OrigPhi);
2134e8d8bef9SDimitry Andric pushNarrowIVUsers(OrigPhi, WidePhi);
2135e8d8bef9SDimitry Andric
2136e8d8bef9SDimitry Andric while (!NarrowIVUsers.empty()) {
2137e8d8bef9SDimitry Andric WidenIV::NarrowIVDefUse DU = NarrowIVUsers.pop_back_val();
2138e8d8bef9SDimitry Andric
2139e8d8bef9SDimitry Andric // Process a def-use edge. This may replace the use, so don't hold a
2140e8d8bef9SDimitry Andric // use_iterator across it.
21410fca6ea1SDimitry Andric Instruction *WideUse = widenIVUse(DU, Rewriter, OrigPhi, WidePhi);
2142e8d8bef9SDimitry Andric
2143e8d8bef9SDimitry Andric // Follow all def-use edges from the previous narrow use.
2144e8d8bef9SDimitry Andric if (WideUse)
2145e8d8bef9SDimitry Andric pushNarrowIVUsers(DU.NarrowUse, WideUse);
2146e8d8bef9SDimitry Andric
2147e8d8bef9SDimitry Andric // widenIVUse may have removed the def-use edge.
2148e8d8bef9SDimitry Andric if (DU.NarrowDef->use_empty())
2149e8d8bef9SDimitry Andric DeadInsts.emplace_back(DU.NarrowDef);
2150e8d8bef9SDimitry Andric }
2151e8d8bef9SDimitry Andric
2152e8d8bef9SDimitry Andric // Attach any debug information to the new PHI.
2153e8d8bef9SDimitry Andric replaceAllDbgUsesWith(*OrigPhi, *WidePhi, *WidePhi, *DT);
2154e8d8bef9SDimitry Andric
2155e8d8bef9SDimitry Andric return WidePhi;
2156e8d8bef9SDimitry Andric }
2157e8d8bef9SDimitry Andric
2158e8d8bef9SDimitry Andric /// Calculates control-dependent range for the given def at the given context
2159e8d8bef9SDimitry Andric /// by looking at dominating conditions inside of the loop
calculatePostIncRange(Instruction * NarrowDef,Instruction * NarrowUser)2160e8d8bef9SDimitry Andric void WidenIV::calculatePostIncRange(Instruction *NarrowDef,
2161e8d8bef9SDimitry Andric Instruction *NarrowUser) {
2162e8d8bef9SDimitry Andric Value *NarrowDefLHS;
2163e8d8bef9SDimitry Andric const APInt *NarrowDefRHS;
2164e8d8bef9SDimitry Andric if (!match(NarrowDef, m_NSWAdd(m_Value(NarrowDefLHS),
2165e8d8bef9SDimitry Andric m_APInt(NarrowDefRHS))) ||
2166e8d8bef9SDimitry Andric !NarrowDefRHS->isNonNegative())
2167e8d8bef9SDimitry Andric return;
2168e8d8bef9SDimitry Andric
2169e8d8bef9SDimitry Andric auto UpdateRangeFromCondition = [&] (Value *Condition,
2170e8d8bef9SDimitry Andric bool TrueDest) {
2171e8d8bef9SDimitry Andric CmpInst::Predicate Pred;
2172e8d8bef9SDimitry Andric Value *CmpRHS;
2173e8d8bef9SDimitry Andric if (!match(Condition, m_ICmp(Pred, m_Specific(NarrowDefLHS),
2174e8d8bef9SDimitry Andric m_Value(CmpRHS))))
2175e8d8bef9SDimitry Andric return;
2176e8d8bef9SDimitry Andric
2177e8d8bef9SDimitry Andric CmpInst::Predicate P =
2178e8d8bef9SDimitry Andric TrueDest ? Pred : CmpInst::getInversePredicate(Pred);
2179e8d8bef9SDimitry Andric
2180e8d8bef9SDimitry Andric auto CmpRHSRange = SE->getSignedRange(SE->getSCEV(CmpRHS));
2181e8d8bef9SDimitry Andric auto CmpConstrainedLHSRange =
2182e8d8bef9SDimitry Andric ConstantRange::makeAllowedICmpRegion(P, CmpRHSRange);
2183e8d8bef9SDimitry Andric auto NarrowDefRange = CmpConstrainedLHSRange.addWithNoWrap(
2184e8d8bef9SDimitry Andric *NarrowDefRHS, OverflowingBinaryOperator::NoSignedWrap);
2185e8d8bef9SDimitry Andric
2186e8d8bef9SDimitry Andric updatePostIncRangeInfo(NarrowDef, NarrowUser, NarrowDefRange);
2187e8d8bef9SDimitry Andric };
2188e8d8bef9SDimitry Andric
2189e8d8bef9SDimitry Andric auto UpdateRangeFromGuards = [&](Instruction *Ctx) {
2190e8d8bef9SDimitry Andric if (!HasGuards)
2191e8d8bef9SDimitry Andric return;
2192e8d8bef9SDimitry Andric
2193e8d8bef9SDimitry Andric for (Instruction &I : make_range(Ctx->getIterator().getReverse(),
2194e8d8bef9SDimitry Andric Ctx->getParent()->rend())) {
2195e8d8bef9SDimitry Andric Value *C = nullptr;
2196e8d8bef9SDimitry Andric if (match(&I, m_Intrinsic<Intrinsic::experimental_guard>(m_Value(C))))
2197e8d8bef9SDimitry Andric UpdateRangeFromCondition(C, /*TrueDest=*/true);
2198e8d8bef9SDimitry Andric }
2199e8d8bef9SDimitry Andric };
2200e8d8bef9SDimitry Andric
2201e8d8bef9SDimitry Andric UpdateRangeFromGuards(NarrowUser);
2202e8d8bef9SDimitry Andric
2203e8d8bef9SDimitry Andric BasicBlock *NarrowUserBB = NarrowUser->getParent();
2204e8d8bef9SDimitry Andric // If NarrowUserBB is statically unreachable asking dominator queries may
2205e8d8bef9SDimitry Andric // yield surprising results. (e.g. the block may not have a dom tree node)
2206e8d8bef9SDimitry Andric if (!DT->isReachableFromEntry(NarrowUserBB))
2207e8d8bef9SDimitry Andric return;
2208e8d8bef9SDimitry Andric
2209e8d8bef9SDimitry Andric for (auto *DTB = (*DT)[NarrowUserBB]->getIDom();
2210e8d8bef9SDimitry Andric L->contains(DTB->getBlock());
2211e8d8bef9SDimitry Andric DTB = DTB->getIDom()) {
2212e8d8bef9SDimitry Andric auto *BB = DTB->getBlock();
2213e8d8bef9SDimitry Andric auto *TI = BB->getTerminator();
2214e8d8bef9SDimitry Andric UpdateRangeFromGuards(TI);
2215e8d8bef9SDimitry Andric
2216e8d8bef9SDimitry Andric auto *BI = dyn_cast<BranchInst>(TI);
2217e8d8bef9SDimitry Andric if (!BI || !BI->isConditional())
2218e8d8bef9SDimitry Andric continue;
2219e8d8bef9SDimitry Andric
2220e8d8bef9SDimitry Andric auto *TrueSuccessor = BI->getSuccessor(0);
2221e8d8bef9SDimitry Andric auto *FalseSuccessor = BI->getSuccessor(1);
2222e8d8bef9SDimitry Andric
2223e8d8bef9SDimitry Andric auto DominatesNarrowUser = [this, NarrowUser] (BasicBlockEdge BBE) {
2224e8d8bef9SDimitry Andric return BBE.isSingleEdge() &&
2225e8d8bef9SDimitry Andric DT->dominates(BBE, NarrowUser->getParent());
2226e8d8bef9SDimitry Andric };
2227e8d8bef9SDimitry Andric
2228e8d8bef9SDimitry Andric if (DominatesNarrowUser(BasicBlockEdge(BB, TrueSuccessor)))
2229e8d8bef9SDimitry Andric UpdateRangeFromCondition(BI->getCondition(), /*TrueDest=*/true);
2230e8d8bef9SDimitry Andric
2231e8d8bef9SDimitry Andric if (DominatesNarrowUser(BasicBlockEdge(BB, FalseSuccessor)))
2232e8d8bef9SDimitry Andric UpdateRangeFromCondition(BI->getCondition(), /*TrueDest=*/false);
2233e8d8bef9SDimitry Andric }
2234e8d8bef9SDimitry Andric }
2235e8d8bef9SDimitry Andric
2236e8d8bef9SDimitry Andric /// Calculates PostIncRangeInfos map for the given IV
calculatePostIncRanges(PHINode * OrigPhi)2237e8d8bef9SDimitry Andric void WidenIV::calculatePostIncRanges(PHINode *OrigPhi) {
2238e8d8bef9SDimitry Andric SmallPtrSet<Instruction *, 16> Visited;
2239e8d8bef9SDimitry Andric SmallVector<Instruction *, 6> Worklist;
2240e8d8bef9SDimitry Andric Worklist.push_back(OrigPhi);
2241e8d8bef9SDimitry Andric Visited.insert(OrigPhi);
2242e8d8bef9SDimitry Andric
2243e8d8bef9SDimitry Andric while (!Worklist.empty()) {
2244e8d8bef9SDimitry Andric Instruction *NarrowDef = Worklist.pop_back_val();
2245e8d8bef9SDimitry Andric
2246e8d8bef9SDimitry Andric for (Use &U : NarrowDef->uses()) {
2247e8d8bef9SDimitry Andric auto *NarrowUser = cast<Instruction>(U.getUser());
2248e8d8bef9SDimitry Andric
2249e8d8bef9SDimitry Andric // Don't go looking outside the current loop.
2250e8d8bef9SDimitry Andric auto *NarrowUserLoop = (*LI)[NarrowUser->getParent()];
2251e8d8bef9SDimitry Andric if (!NarrowUserLoop || !L->contains(NarrowUserLoop))
2252e8d8bef9SDimitry Andric continue;
2253e8d8bef9SDimitry Andric
2254e8d8bef9SDimitry Andric if (!Visited.insert(NarrowUser).second)
2255e8d8bef9SDimitry Andric continue;
2256e8d8bef9SDimitry Andric
2257e8d8bef9SDimitry Andric Worklist.push_back(NarrowUser);
2258e8d8bef9SDimitry Andric
2259e8d8bef9SDimitry Andric calculatePostIncRange(NarrowDef, NarrowUser);
2260e8d8bef9SDimitry Andric }
2261e8d8bef9SDimitry Andric }
2262e8d8bef9SDimitry Andric }
2263e8d8bef9SDimitry Andric
createWideIV(const WideIVInfo & WI,LoopInfo * LI,ScalarEvolution * SE,SCEVExpander & Rewriter,DominatorTree * DT,SmallVectorImpl<WeakTrackingVH> & DeadInsts,unsigned & NumElimExt,unsigned & NumWidened,bool HasGuards,bool UsePostIncrementRanges)2264e8d8bef9SDimitry Andric PHINode *llvm::createWideIV(const WideIVInfo &WI,
2265e8d8bef9SDimitry Andric LoopInfo *LI, ScalarEvolution *SE, SCEVExpander &Rewriter,
2266e8d8bef9SDimitry Andric DominatorTree *DT, SmallVectorImpl<WeakTrackingVH> &DeadInsts,
2267e8d8bef9SDimitry Andric unsigned &NumElimExt, unsigned &NumWidened,
2268e8d8bef9SDimitry Andric bool HasGuards, bool UsePostIncrementRanges) {
2269e8d8bef9SDimitry Andric WidenIV Widener(WI, LI, SE, DT, DeadInsts, HasGuards, UsePostIncrementRanges);
2270e8d8bef9SDimitry Andric PHINode *WidePHI = Widener.createWideIV(Rewriter);
2271e8d8bef9SDimitry Andric NumElimExt = Widener.getNumElimExt();
2272e8d8bef9SDimitry Andric NumWidened = Widener.getNumWidened();
2273e8d8bef9SDimitry Andric return WidePHI;
2274e8d8bef9SDimitry Andric }
2275